{"id":201308,"date":"2025-10-15T07:38:17","date_gmt":"2025-10-15T07:38:17","guid":{"rendered":"https:\/\/www.newsbeep.com\/uk\/201308\/"},"modified":"2025-10-15T07:38:17","modified_gmt":"2025-10-15T07:38:17","slug":"history-of-individual-presolar-sic-grains-revealed-by-stellar-winds","status":"publish","type":"post","link":"https:\/\/www.newsbeep.com\/uk\/201308\/","title":{"rendered":"History of individual presolar SiC grains revealed by stellar winds"},"content":{"rendered":"<p>Three-dimensional analysis of presolar SiC grains<\/p>\n<p>We have developed a new secondary neutral mass spectrometer (SNMS) for analyzing He with nanometer-scale resolution, called LIMAS<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\" title=\"Bajo, K. -i &amp; Yurimoto, H. Nanoscale analysis of noble gas in solids. J. Anal. Sci. Technol. 15, 19 (2024).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR30\" id=\"ref-link-section-d152977345e577\" rel=\"nofollow noopener\" target=\"_blank\">30<\/a>. LIMAS revealed the depth profile of the solar wind He implanted in the NASA Genesis target and derived the fluence spectra of the solar wind<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\" title=\"Bajo, K. -i et al. Depth profiling analysis of solar wind helium collected in diamond-like carbon film from Genesis. Geochem. J. 49, 559&#x2013;566 (2015).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR31\" id=\"ref-link-section-d152977345e581\" rel=\"nofollow noopener\" target=\"_blank\">31<\/a>. Here we analyzed 15 presolar SiC grains, which were aliquoted from a size-sorted fraction called KJG extracted from the Murchison carbonaceous meteorite<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 32\" title=\"Amari, S., Lewis, R. S. &amp; Anders, E. Interstellar grains in meteorites: I. Isolation of SiC, graphite and diamond; size distributions of SiC and graphite. Geochim Cosmochim. Acta 58, 459&#x2013;470 (1994).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR32\" id=\"ref-link-section-d152977345e585\" rel=\"nofollow noopener\" target=\"_blank\">32<\/a>. The aliquot was dispersed on a gold plate using a droplet of a mix of distilled water and isopropyl alcohol (see methods, subsection \u2018Sample and sample preparation\u2019 for details). We determined, for the first time, the 3-D distribution of 4He together with 12, 13C, and 28, 29, 30Si of the individual presolar SiC grains using LIMAS to derive their depth profiles to deduce when, where, and how He was incorporated into presolar SiC grains (see methods, subsection \u20183-D helium analysis by LIMAS\u2019 for details).<\/p>\n<p>Determining stellar wind speeds from 3-D analysis<\/p>\n<p>The measured 12C\/13C ratios of presolar SiC grains are unimodally distributed over the range from 12 to 87 with an average of 41 (Table <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>). This distribution is similar to those of mainstream SiC<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 5\" title=\"Hoppe, P., Amari, S., Zinner, E., Ireland, T. &amp; Lewis, R. S. Carbon, nitrogen, magnesium, silicon, and titanium Isotopic compositions of single interstellar silicon carbide grains from the Murchison carbonaceous chondrite. Astrophys. J. 430, 870&#x2013;890 (1994).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR5\" id=\"ref-link-section-d152977345e611\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>, indicating that these grains likely belong to mainstream SiC. This is reasonable because about 93% of presolar SiC is accounted for by mainstream SiC<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 5\" title=\"Hoppe, P., Amari, S., Zinner, E., Ireland, T. &amp; Lewis, R. S. Carbon, nitrogen, magnesium, silicon, and titanium Isotopic compositions of single interstellar silicon carbide grains from the Murchison carbonaceous chondrite. Astrophys. J. 430, 870&#x2013;890 (1994).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR5\" id=\"ref-link-section-d152977345e615\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>. The 3 SiC grains (A3-04, A3-09a, and A3-09b) were undetected 4He from the grains, and the 4He signals from the grain (A3-12b) were interfered with by the intense 4He signals from an adjacent SiC grain, but the other 11 grains contain 4He above our detection limit and are free of interference (Tables <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>). The grain size range of this study is similar to that of Heck et al. <a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e635\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>. (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>). The plots of three grains (A3-01a, A3-01b, and A3-12a) overlap with those of Heck et al. The plots of the other grains in this study are below the detection limit of Heck et al. The percentage of grains with He detected (80\u2009\u00b1\u200925 (1\u03c3) %; 11 out of 14 examined grains) is higher than the previous studies (&lt;31%)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e642\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Nichols, R. H. Jr., Hohenberg, C. M., Hoppe, P., Amari, S. &amp; Lewis, R. S. 22Ne-E(H) and 4He in single SiC and 22Ne-E(L) in single C of known C-isotopic compositions. Lunar Planet. Sci. Conf. 23, 989 (1992).\" href=\"#ref-CR27\" id=\"ref-link-section-d152977345e645\">27<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Nichols, R. H. Jr., Hohenberg, C. M., Amari, S. &amp; Lewis, R. S. 22Ne-E(H) and 4He measured in individual SiC grains using laser gas extraction. Meteoritics 26, 377&#x2013;378 (1991).\" href=\"#ref-CR28\" id=\"ref-link-section-d152977345e645_1\">28<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 29\" title=\"Nichols, R. H. Jr., Amari, S., Hoppe, P. &amp; LR, S. 20,22Ne-E(H) and 4He measured in single interstellar SiC grains of known C-isotopic composition. Meteoritics 28, 410&#x2013;411 (1993).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR29\" id=\"ref-link-section-d152977345e648\" rel=\"nofollow noopener\" target=\"_blank\">29<\/a> because of a lower detection limit in this study (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>) due to mainly higher ionization efficiency by the strong field ionization<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\" title=\"Bajo, K. -i &amp; Yurimoto, H. Nanoscale analysis of noble gas in solids. J. Anal. Sci. Technol. 15, 19 (2024).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR30\" id=\"ref-link-section-d152977345e655\" rel=\"nofollow noopener\" target=\"_blank\">30<\/a>. Indeed, if we remove grains below the detection limit of Heck et al. <a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e659\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>, the percentage (21\u2009\u00b1\u200912 (1\u03c3) %; 3 out of 14 examined grains; Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>) is similar to each other.<\/p>\n<p>Fig. 1: 4He concentrations vs. grain size for mainstream SiC from the Murchison meteorite.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-64216-1\/figures\/1\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig1\" src=\"https:\/\/www.newsbeep.com\/uk\/wp-content\/uploads\/2025\/10\/41467_2025_64216_Fig1_HTML.png\" alt=\"figure 1\" loading=\"lazy\" width=\"685\" height=\"654\"\/><\/a><\/p>\n<p>Solid line: detection limit of Heck et al. (2007)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e681\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>. Dashed line: estimated detection limit of this study. Plots of Heck et al. (2007)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e685\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a> (open circle) and this study (solid circle) are analyses of individual grains. Plots of Lewis et al. (1994)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\" title=\"Lewis, R. S., Amari, S. &amp; Anders, E. Interstellar grains in meteorites: II. SiC and its noble gases. Geochim. Cosmochim. Acta 58, 471&#x2013;494 (1994).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR6\" id=\"ref-link-section-d152977345e689\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a> (cross) are bulk analyses of size-sorted SiC grain fractions, not of individual grains. Source data are provided as a Source Data file.<\/p>\n<p>Table 1 Carbon isotope ratios and total 4He counts of SiC grain from MurchisonTable 2 4He concentration in KJG SiC grain from Murchison<\/p>\n<p>Secondary electron (SE) images of individual SiC grains and their 2-D maps of 4He, 12C, and 28Si concentrations derived from the 3-D distributions are shown in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>, panels a, c, d, and b, respectively. Those of SE, 28Si, and 4He are shown in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>, panels a, d, g, j, m, and p; b, e, h, k, n, and q; and c, f, i, l, o, and r, respectively. The 4He content is highly variable between grains ranging from 0.0002 to 0.061\u2009mL\u2009g\u20131 (Table\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>), e.g., as shown in grains A3-12a (0.059\u2009mL\u2009g\u20131), A3-12b (Low concentration, but not quantifiable due to interference), and A3-12c (0.004\u2009mL\u2009g\u20131) (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2c<\/a>). Furthermore, the 4He content is highly heterogeneous in the depth direction within each grain. The content is high near the surface and rapidly decreases towards the inside, reaching a level below the detection limit at a depth of about 300\u2009nm, e.g., as shown in A3-12a (Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>e\u2013<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">h<\/a>). The helium concentration near the surface of A3-12a and A3-01a is about 0.02 atomic%, which exceeds the solubility limit in solids. These characteristics suggest that the concentration profile is generated by implantation of high-speed He into the SiC grains.<\/p>\n<p>Fig. 2: Presolar SiC grains A3-12a (yellow arrow), A3-12b (blue arrow), and A3-12c (pink arrow).<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-64216-1\/figures\/2\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig2\" src=\"https:\/\/www.newsbeep.com\/uk\/wp-content\/uploads\/2025\/10\/41467_2025_64216_Fig2_HTML.png\" alt=\"figure 2\" loading=\"lazy\" width=\"685\" height=\"333\"\/><\/a><\/p>\n<p>a SE image after measurement. b Integrated 28Si image for total measurement depth layers. c Integrated 4He image for total measurement depth layers. d Integrated 12C image for total measurement depth layers. e\u2013h Averaged 4He images for measurement depth layers between 2-20, 50-100, 120-170, 250-350\u2009nm, respectively. Grayscale tones in images (e\u2013g) are the same. Yellow rectangles of b\u2013h show analyzing areas of depth-profiling. Scale bar is 3\u2009\u00b5m for all figures.<\/p>\n<p>Fig. 3: Presolar SiC grains.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-64216-1\/figures\/3\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig3\" src=\"https:\/\/www.newsbeep.com\/uk\/wp-content\/uploads\/2025\/10\/41467_2025_64216_Fig3_HTML.png\" alt=\"figure 3\" loading=\"lazy\" width=\"685\" height=\"340\"\/><\/a><\/p>\n<p>a\u2013c A3-01a (yellow arrow) and A3-01b (blue arrow). d\u2013f A3-02 (yellow arrow) and A3-03 (blue arrow). g\u2013i A3-04 (yellow arrow), A3-05 (blue arrow), A3-06 (red arrow), A3-07 (pink arrow). j\u2013l A3-09a (yellow arrow), and A3-09b (blue arrow). (m-o) A3-10. p\u2013r A3-11. a, d, g, j, p SE image after measurement. b, e, h, k, q) Integrated 28Si image for total measurement depth layers. (c, f, i, l, r) Integrated 4He image for total measurement depth layers. Yellow rectangles show analyzing areas of depth-profiling. Scale bar is 3\u2009\u00b5m for all figures.<\/p>\n<p>The primary beam of LIMAS sputtered atoms from grain surfaces. Comparing the SE images before and after sputtering (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>), it appears that the primary ions sputtered the SiC grains from the surface almost parallel to the original surface profile. If the sputtering has been carried out to slice through the grain, the He maps should have a He-rich rim around the grain. However, the He maps for each depth layer never show such features, but are homogeneously distributed in each depth layer (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>e\u2013<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">h<\/a>). Therefore, He was likely implanted homogeneously over the whole grain surface. The time variation of the noble gas concentration during sputtering from the whole grain area can be regarded as an implantation profile of the SiC grains in the depth direction.<\/p>\n<p>Fig. 4: SE image of presolar SiC grains before and after sputtering by LIMAS.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-64216-1\/figures\/4\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig4\" src=\"https:\/\/www.newsbeep.com\/uk\/wp-content\/uploads\/2025\/10\/41467_2025_64216_Fig4_HTML.png\" alt=\"figure 4\" loading=\"lazy\" width=\"685\" height=\"268\"\/><\/a><\/p>\n<p>Sputtering layer thickness is estimated to be 570\u2009nm on the SiC grains. Sputtering rate is faster for Au substrate than for SiC. The sputtering of SiC grains occurred almost parallel to the original surface profile.<\/p>\n<p>For 4He detected SiC grains, the depth profiles from the grain surface are shown in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>. The 4He signals were detected down to a depth of 300\u2009nm and became background at greater depths. For grains A3-01a, A3-01b, and A3-12a, the 4He peak appeared at a depth of 100, 50, and 100\u2009nm, respectively (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5a<\/a>). Because implanted He stops at different depths from the material surface corresponding to their kinetic energies, the peaks correspond to the implantation range of 4He<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 33\" title=\"Ziegler J. F., Biersack J. P., Ziegler M. D. SRIM, the stopping and range of ions in matter. Lulu Press Co., &#010;                  http:\/\/www.srim.org&#010;                  &#010;                 (2012).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR33\" id=\"ref-link-section-d152977345e3615\" rel=\"nofollow noopener\" target=\"_blank\">33<\/a>. The implantation ranges at given kinetic energies into SiC were calculated using SRIM software<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 33\" title=\"Ziegler J. F., Biersack J. P., Ziegler M. D. SRIM, the stopping and range of ions in matter. Lulu Press Co., &#010;                  http:\/\/www.srim.org&#010;                  &#010;                 (2012).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR33\" id=\"ref-link-section-d152977345e3619\" rel=\"nofollow noopener\" target=\"_blank\">33<\/a> (Supplementary Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S1<\/a>). The kinetic energy can be translated into the velocity of the stellar wind observed in astronomy. The implantation ranges of 4He for the SiC grains correspond to the kinetic energies of 7-15\u2009keV, corresponding to velocities of 580-850\u2009km\u2009s\u22121 for stellar flow, with an average of 12\u2009keV (3\u2009keV\/nucleon) (Table\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>). The energy range in this study is within the astronomically observed and theoretically estimated ranges of hot stellar wind speeds from CSPNe (about 20 to about 3000\u2009km\u2009s\u20131)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Krti&#x10D;ka, J., Kub&#xE1;t, J. &amp; Krti&#x10D;kov&#xE1;, I. Stellar wind models of central stars of planetary nebulae. Astron. Astrophys. 635, A173 (2020).\" href=\"#ref-CR22\" id=\"ref-link-section-d152977345e3637\">22<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Herald, J. E. &amp; Bianchi, L. The winds of hydrogen-rich central stars of planetary nebulae. Mon. Not. R. Astron Soc. 417, 2440&#x2013;2464 (2011).\" href=\"#ref-CR23\" id=\"ref-link-section-d152977345e3637_1\">23<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Pauldrach, A. W. A., Hoffmann, T. L. &amp; M&#xE9;ndez, R. H. Radiation-driven winds of hot luminous stars - XV. Constraints on the mass&#x2013;luminosity relation of central stars of planetary nebulae. AA 419, 1111&#x2013;1122 (2004).\" href=\"#ref-CR24\" id=\"ref-link-section-d152977345e3637_2\">24<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Volk, K. &amp; Kwok, S. Dynamical evolution of planetary nebulae. Astron Astrophys 153, 79&#x2013;90 (1985).\" href=\"#ref-CR25\" id=\"ref-link-section-d152977345e3637_3\">25<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 26\" title=\"Iben, I. Planetary nebulae and their central stars &#x2014; origin and evolution. Phys. Rep. 250, 1&#x2013;94 (1995).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR26\" id=\"ref-link-section-d152977345e3640\" rel=\"nofollow noopener\" target=\"_blank\">26<\/a>, and corresponds to stellar temperatures of 30-50\u2009kK. Therefore, it is plausible that the 4He in the presolar SiC grains is predominantly implanted by the CSPN winds and therefore He-G, supporting the suggestions of previous isotopic studies<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\" title=\"Lewis, R. S., Amari, S. &amp; Anders, E. Interstellar grains in meteorites: II. SiC and its noble gases. Geochim. Cosmochim. Acta 58, 471&#x2013;494 (1994).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR6\" id=\"ref-link-section-d152977345e3646\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3649\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 34\" title=\"Gallino, R., Busso, M., Picchio, G. &amp; Raiteri, C. M. On the astrophysical interpretation of isotope anomalies in meteoritic SiC grains. Nature 348, 298&#x2013;302 (1990).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR34\" id=\"ref-link-section-d152977345e3652\" rel=\"nofollow noopener\" target=\"_blank\">34<\/a>.<\/p>\n<p>Fig. 5: Depth profiles of 4He into presolar SiC grains.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-64216-1\/figures\/5\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig5\" src=\"https:\/\/www.newsbeep.com\/uk\/wp-content\/uploads\/2025\/10\/41467_2025_64216_Fig5_HTML.png\" alt=\"figure 5\" loading=\"lazy\" width=\"685\" height=\"284\"\/><\/a><\/p>\n<p>a Grains with high 4He contents. A3-01a (red), A3-01b (blue), and A3-12a (green). b Grains with low 4He contents. A3-02 (red), A3-03 (blue), A3-05 (green), A3-06 (black), A3-07 (pink), A3-10 (light blue), A3-11 (yellow), and A3-12c (orange). The individual depth profiles for each grain can be found in Supplementary Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S2<\/a>\u2013<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S9<\/a>. The jagged wiggles in the curves are measurement uncertainties caused by instrumental instabilities. Source data are provided as a Source Data file.<\/p>\n<p>In order to simply interpret a relationship between the various size fractions of the SiC grains and their noble gas concentrations among the fractions, an implantation energy of about 50\u2009keV\/nucleon has been suggested for the SiC presolar grains<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 16\" title=\"Verchovsky, A. B., Wright, I. P. &amp; Pillinger, C. T. Astrophysical Significance Of Asymptotic Giant Branch Stellar Wind Energies Recorded In Meteoritic SiC Grains. Astrophys J. 607, 611&#x2013;619 (2004).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR16\" id=\"ref-link-section-d152977345e3699\" rel=\"nofollow noopener\" target=\"_blank\">16<\/a>. This energy is close to the speed of the fastest CSPN wind<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 26\" title=\"Iben, I. Planetary nebulae and their central stars &#x2014; origin and evolution. Phys. Rep. 250, 1&#x2013;94 (1995).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR26\" id=\"ref-link-section-d152977345e3703\" rel=\"nofollow noopener\" target=\"_blank\">26<\/a>. However, the helium implanted in SiC grains with about 50\u2009keV\/nucleon (corresponding to a stellar wind speed of about 3000\u2009km\u2009s\u20131 and an implantation range of about 700\u2009nm deep) has not been detected in this study. Instead, this study shows that the implantation energies into the SiC grains are variable. This result is robust because the depth profile is directly correlated with the implantation energy, and the SiC grains used in this study were collected from the size-sorted fraction KJG.<\/p>\n<p>The relationships between the grain size of mainstream presolar SiC and its 4He content (Heck et al.<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3714\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a> and this study) are compared with those between the size-sorted SiC fraction and its 4He content (Lewis et al. <a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\" title=\"Lewis, R. S., Amari, S. &amp; Anders, E. Interstellar grains in meteorites: II. SiC and its noble gases. Geochim. Cosmochim. Acta 58, 471&#x2013;494 (1994).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR6\" id=\"ref-link-section-d152977345e3720\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a>)(Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>). Large variations of more than two orders of magnitude in He concentration are observed among grains of similar size. Such large variation is consistent with evidence showing that gas-rich grains (about 4% fraction of the SiC in KJG) accounted for more than 90% of the gas concentration measured in aggregates of millions of grains<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 27\" title=\"Nichols, R. H. Jr., Hohenberg, C. M., Hoppe, P., Amari, S. &amp; Lewis, R. S. 22Ne-E(H) and 4He in single SiC and 22Ne-E(L) in single C of known C-isotopic compositions. Lunar Planet. Sci. Conf. 23, 989 (1992).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR27\" id=\"ref-link-section-d152977345e3728\" rel=\"nofollow noopener\" target=\"_blank\">27<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 28\" title=\"Nichols, R. H. Jr., Hohenberg, C. M., Amari, S. &amp; Lewis, R. S. 22Ne-E(H) and 4He measured in individual SiC grains using laser gas extraction. Meteoritics 26, 377&#x2013;378 (1991).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR28\" id=\"ref-link-section-d152977345e3731\" rel=\"nofollow noopener\" target=\"_blank\">28<\/a>. In laboratory analyses where individual particles were analyzed, a significant number of particles below the detection limit of 4He were counted; about 70% of the total number of grains analyzed in Heck et al. <a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3737\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>, about 20% in this study. As a result, the values of the size-sorted bulk samples<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\" title=\"Lewis, R. S., Amari, S. &amp; Anders, E. Interstellar grains in meteorites: II. SiC and its noble gases. Geochim. Cosmochim. Acta 58, 471&#x2013;494 (1994).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR6\" id=\"ref-link-section-d152977345e3741\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a> are plotted on the upper side, and it is difficult to represent implantation energy with a single value. However, this discussion cannot rule out the existence of SiC grains that have been implanted with He at high energies, such as about 50\u2009keV\/nucleon. For example, such high implantation energy travels implanted 4He a great distance of about 1\u2009\u00b5m and stops. If this implantation occurred for 1-\u00b5m-sized SiC grains, the helium would stop near the grain surface on the opposite side of the implantation. We have depth profiling results from three SiC grains (A3-05, A3-06, and A3-07) that are 1\u2009\u00b5m or slightly smaller in size and may be applicable in this case (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5b<\/a>). However, it is strange that such high-energy implantations have not been observed for larger SiC grains. Further study is required to investigate the real distribution of the implantation energy into SiC grains for more precise discussions.<\/p>\n<p>Artificial peak broadening would have occurred because the sputtering was not exactly parallel to the original surface profiles due to the surface irregularities of each grain. Therefore, it is difficult to assign 4He peaks for grains with low 4He concentrations even if they also have 4He peaks at a depth of 50\u2013100\u2009nm. In the results, for other grains, weak 4He signals appeared at depths shallower than 300\u2009nm with no clear peaks (Fig. <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5b<\/a>).<\/p>\n<p>On the other hand, stellar wind velocities for AGB stars are less than 40\u2009km\u2009s\u22121\u2006<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Bladh, S., Eriksson, K., Marigo, P., Liljegren, S. &amp; Aringer, B. Carbon star wind models at solar and sub-solar metallicities: a comparative study. AA 623, A119 (2019).\" href=\"#ref-CR18\" id=\"ref-link-section-d152977345e3769\">18<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Sch&#xF6;ier, F. L. &amp; Olofsson, H. Models of circumstellar molecular radio line emission. AA 368, 969&#x2013;993 (2001).\" href=\"#ref-CR19\" id=\"ref-link-section-d152977345e3769_1\">19<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Ramstedt, S. &amp; Olofsson, H. The 12CO\/13CO ratio in AGB stars of different chemical type. AA 566, A145 (2014).\" href=\"#ref-CR20\" id=\"ref-link-section-d152977345e3769_2\">20<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 21\" title=\"Groenewegen, M. A. T. et al. The ALMA detection of CO rotational line emission in AGB stars in the Large Magellanic Cloud. AA 596, A50 (2016).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR21\" id=\"ref-link-section-d152977345e3772\" rel=\"nofollow noopener\" target=\"_blank\">21<\/a>. The kinetic energy of the AGB 4He wind is calculated to be less than 0.05\u2009keV, and the implantation range into SiC is less than 1\u2009nm (Supplementary Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S1<\/a>), which is much smaller than the depth resolution of the LIMAS analysis. Therefore, the 4He signal at the grain surface would be mainly contributed by the He-G, but might be due to a small contribution of implanted thermal and suprathermal components of the AGB stellar winds. This also corroborates previous isotopic studies<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\" title=\"Lewis, R. S., Amari, S. &amp; Anders, E. Interstellar grains in meteorites: II. SiC and its noble gases. Geochim. Cosmochim. Acta 58, 471&#x2013;494 (1994).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR6\" id=\"ref-link-section-d152977345e3784\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3787\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a> that concluded the He-G component comprised over 95% of the measured stellar gas in mainstream SiC grains.<\/p>\n<p>History of presolar SiC formation<\/p>\n<p>The fluences of the presolar SiC grains calculated from the depth profiles are variable, ranging from 6.4 \u00d7 1011 to 3.1 \u00d7 1014 4He cm\u22122 (Table\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>). Typical mass-loss rate of CSPNe for 30-50\u2009kK is about 5 \u00d7 10\u22129\u2009M\u2a00 y\u22121\u2006<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Krti&#x10D;ka, J., Kub&#xE1;t, J. &amp; Krti&#x10D;kov&#xE1;, I. Stellar wind models of central stars of planetary nebulae. Astron. Astrophys. 635, A173 (2020).\" href=\"#ref-CR22\" id=\"ref-link-section-d152977345e3815\">22<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Herald, J. E. &amp; Bianchi, L. The winds of hydrogen-rich central stars of planetary nebulae. Mon. Not. R. Astron Soc. 417, 2440&#x2013;2464 (2011).\" href=\"#ref-CR23\" id=\"ref-link-section-d152977345e3815_1\">23<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\" title=\"Pauldrach, A. W. A., Hoffmann, T. L. &amp; M&#xE9;ndez, R. H. Radiation-driven winds of hot luminous stars - XV. Constraints on the mass&#x2013;luminosity relation of central stars of planetary nebulae. AA 419, 1111&#x2013;1122 (2004).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR24\" id=\"ref-link-section-d152977345e3818\" rel=\"nofollow noopener\" target=\"_blank\">24<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 35\" title=\"Kudritzki, R. P., Urbaneja, M. A. &amp; Puls, J. Atmospheres and Winds of PN Central Stars. Proc. Int. Astron. Union 2, 119&#x2013;126 (2006).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR35\" id=\"ref-link-section-d152977345e3821\" rel=\"nofollow noopener\" target=\"_blank\">35<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 3\" title=\"Tang, M. &amp; Anders, E. Isotopic anomalies of Ne, Xe, and C in meteorites. II. Interstellar diamond and SiC: Carriers of exotic noble gases. Geochim Cosmochim. Acta 52, 1235&#x2013;1244 (1988).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR3\" id=\"ref-link-section-d152977345e3824\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>, and the typical period of CSPNe is about 5000\u2009y<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 17\" title=\"Herwig, F. Evolution of Asymptotic Giant Branch Stars. Annu. Rev. Astron. Astrophys. 43, 435&#x2013;479 (2005).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR17\" id=\"ref-link-section-d152977345e3828\" rel=\"nofollow noopener\" target=\"_blank\">17<\/a>. The He implantation into the presolar grain was continued during this period. The chemical composition of CSPN wind is very diverse, ranging from H-deficient (He-rich) to H-rich (solar-like)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 17\" title=\"Herwig, F. Evolution of Asymptotic Giant Branch Stars. Annu. Rev. Astron. Astrophys. 43, 435&#x2013;479 (2005).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR17\" id=\"ref-link-section-d152977345e3832\" rel=\"nofollow noopener\" target=\"_blank\">17<\/a>. We therefore performed our calculations assuming two endmembers: one with a 100 mass% proportion of He in the total mass-loss atoms (He-rich) and one with a 30 mass% proportion (solar-like). The latter is derived from the solar abundance<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 37\" title=\"Lodders, K. Relative atomic solar system abundances, mass fractions, and atomic masses of the elements and their isotopes, composition of the solar photosphere, and compositions of the major chondritic meteorite groups. Space Sci. Rev. 217, 44 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR37\" id=\"ref-link-section-d152977345e3836\" rel=\"nofollow noopener\" target=\"_blank\">37<\/a>. Using the 4He fluences in this study and these two endmembers, the sites of presolar SiC grains at the end of the CSPNe phase, where noble gas was implanted, are calculated to be 0.8\u201332 ly from the CSPNe (Table\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a> and see methods, subsection \u2018CSPN wind irradiation and formation age of SiC\u2019 for details). The sites for SiC grains of top three fluences (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5a<\/a>), distances of 0.8\u20132.9 ly from the CSPNe, are roughly consistent with the radii of planetary nebulae in the Galaxy (less than 5 ly for the vast majority<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 38\" title=\"Frew, D. J. &amp; Parker, Q. A. Planetary Nebulae: Observational Properties, Mimics and Diagnostics. Publ. Astron. Soc. Aust. 27, 129&#x2013;148 (2010).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR38\" id=\"ref-link-section-d152977345e3849\" rel=\"nofollow noopener\" target=\"_blank\">38<\/a>), e.g., Ring Nebula (M57) and Helix Nebula (NGC 7293)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 39\" title=\"Kwok S. The Origin and Evolution of Planetary Nebulae. Cambridge University Press (2000).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR39\" id=\"ref-link-section-d152977345e3853\" rel=\"nofollow noopener\" target=\"_blank\">39<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 40\" title=\"O&#x2019;Dell, C. R., McCullough, P. R. &amp; Meixner, M. Unraveling the Helix Nebula: Its Structure and Knots. Astronom. J. 128, 2339 (2004).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR40\" id=\"ref-link-section-d152977345e3856\" rel=\"nofollow noopener\" target=\"_blank\">40<\/a>, suggesting that the implantation events occurred in planetary nebulae.<\/p>\n<p>Since the grains in the circumstellar envelopes and the planetary nebulae expand with the gas, the time periods that the grains have moved from the formation site, which is close to the AGB star, to the site at the end of the CSPNe phase can be calculated using the expansion velocity of the circumstellar envelope (see methods, subsection \u2018CSPN wind irradiation and formation age of SiC\u2019 for details). We refer to this period as the formation age of the presolar SiC grains anchored by the CSPNe phase of stellar evolution, i.e., time = 0 is at the end of the CSPNe phase. We also applied this method to calculate the formation ages of the mainstream SiC grains measured by Heck et al. <a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3863\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>. The formation ages of the mainstream SiC grains (Tables\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>) are spread over the last about 1\u2009My period of the AGB star phase of stellar evolution (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig6\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a>). A closer inspection shows that the Murray grains<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3876\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a> formed at the very end of the AGB phase followed by the Murchison grains by the same authors<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3881\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>. Some of our Murchison grains also formed at the end of the AGB phase, but other grains formed much earlier in the AGB phase (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Fig6\" rel=\"nofollow noopener\" target=\"_blank\">6<\/a>). The locations of the noble gas implantation sites for individual SiC grains and their formation ages are derived in the case of typical CSPNe and AGB stars. Since the parameters are variable among individual CSPNe and the stellar evolution stages, the relative errors are estimated to be approximately 100% for the implantation sites and the formation ages, with a minimum resolution of about 0.5 ly for the site and 5 ky for the age (see methods, subsection \u2018CSPN wind irradiation and formation age of SiC\u2019 for details).<\/p>\n<p>Fig. 6: Histogram of formation age of mainstream presolar SiC grains.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-64216-1\/figures\/6\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig6\" src=\"https:\/\/www.newsbeep.com\/uk\/wp-content\/uploads\/2025\/10\/41467_2025_64216_Fig6_HTML.png\" alt=\"figure 6\" loading=\"lazy\" width=\"685\" height=\"837\"\/><\/a><\/p>\n<p>The age=0 is anchored by the CSPNe phase of stellar evolution. The SiC grains continued to form during the last 1\u2009My period of the AGB star phase of stellar evolution. The periods of stellar evolutionary phases are from Herwig (2005)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 17\" title=\"Herwig, F. Evolution of Asymptotic Giant Branch Stars. Annu. Rev. Astron. Astrophys. 43, 435&#x2013;479 (2005).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR17\" id=\"ref-link-section-d152977345e3900\" rel=\"nofollow noopener\" target=\"_blank\">17<\/a>. Data from Tables\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab2\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a> are plotted. Solid square (from Murchison of this study), open square (from Murchison of Heck et al.<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3910\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>, 2007), and crossed square (from Murray of Heck et al.<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3914\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>, 2007). Case (1): 100 mass% He flux during 5000\u2009yr; Case (2): 30 mass% He flux during 5000\u2009yr.<\/p>\n<p>Table 3 4He concentration of mainstream SiC grain from Murchison and Murray (after Heck et al.<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e3937\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>, 2007)<\/p>\n<p>This argument of formation ages derived from the noble gas data is also consistent with the 12C\/13C ratios of the presolar grains. The 12C\/13C ratios are in the range of 10\u201335 for the O-rich envelopes of AGB stars, while they are \u223c25\u201390 for the C-rich envelopes<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 41\" title=\"Milam, S. N., Woolf, N. J. &amp; Ziurys, L. M. Circumstellar 12C\/13C isotope ratios from millimeter observations of CN and CO: mixing in carbon- and oxygen-rich stars. Astrophys. J. 690, 837&#x2013;849 (2009).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR41\" id=\"ref-link-section-d152977345e6280\" rel=\"nofollow noopener\" target=\"_blank\">41<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 42\" title=\"Ramstedt, S., Sch&#xF6;ier, F. L. &amp; Olofsson, H. Circumstellar molecular line emission from S-type AGB stars: mass-loss rates and SiO abundances*. Astron. Astrophys. 499, 515&#x2013;527 (2009).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR42\" id=\"ref-link-section-d152977345e6283\" rel=\"nofollow noopener\" target=\"_blank\">42<\/a>. Due to the 12C that is dredged-up during the AGB phase, the 12C\/13C ratio of the envelope increases as a star evolves<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 17\" title=\"Herwig, F. Evolution of Asymptotic Giant Branch Stars. Annu. Rev. Astron. Astrophys. 43, 435&#x2013;479 (2005).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR17\" id=\"ref-link-section-d152977345e6294\" rel=\"nofollow noopener\" target=\"_blank\">17<\/a>. In general, the grains with higher 12C\/13C ratios formed in the later stage of the AGB phase than those with lower 12C\/13C ratios. The mean isotopic ratios of the Murchison grains in this study, the Murchison grains of Heck et al. <a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e6307\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a>, and the Murray grains<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 15\" title=\"Heck, P. R. et al. Presolar He and Ne isotopes in single circumstellar SiC grains. Astrophys. J. 656, 1208&#x2013;1222 (2007).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#ref-CR15\" id=\"ref-link-section-d152977345e6311\" rel=\"nofollow noopener\" target=\"_blank\">15<\/a> is 40.5 (Table\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab1\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>), 60.0 (Tables\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>), and 65.8 (Table\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"table anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-64216-1#Tab3\" rel=\"nofollow noopener\" target=\"_blank\">3<\/a>), respectively. Changes in these three 12C\/13C ratios would be related to the stellar evolution of AGB stars in this order. Therefore, the formation ages of the three sets of grains derived from their noble gas data are consistent with the scenario inferred from the 12C\/13C ratios of the grains, indicating that our methods and conclusions are valid.<\/p>\n<p>The stellar wind evidence obtained in this study reveals the formation history of individual mainstream SiC grains. AGB stars appear to have continued to form SiC grains at least during their late stages. We found evidence that the helium in the presolar SiC grains was from the CSPN hot winds. The sites where the CSPN hot wind implantation has occurred range from 0.3 to 32 ly from the center of the planetary nebula, corresponding to the formation ages ranging from 0.95 to 0.01\u2009My before the end of CSPNe. The derived new approach can also be applied to all presolar grains other than SiC, shedding light on the origin and history of circumstellar dusts formed by various types of stars.<\/p>\n","protected":false},"excerpt":{"rendered":"Three-dimensional analysis of presolar SiC grains We have developed a new secondary neutral mass spectrometer (SNMS) for analyzing&hellip;\n","protected":false},"author":2,"featured_media":201309,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[23],"tags":[87373,4230,30854,87374,4231,90,416,54624,56,54,55],"class_list":["post-201308","post","type-post","status-publish","format-standard","has-post-thumbnail","category-space","tag-astrophysical-dust","tag-humanities-and-social-sciences","tag-interstellar-medium","tag-meteoritics","tag-multidisciplinary","tag-science","tag-space","tag-stellar-evolution","tag-uk","tag-united-kingdom","tag-unitedkingdom"],"_links":{"self":[{"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/posts\/201308","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/comments?post=201308"}],"version-history":[{"count":0,"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/posts\/201308\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/media\/201309"}],"wp:attachment":[{"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/media?parent=201308"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/categories?post=201308"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.newsbeep.com\/uk\/wp-json\/wp\/v2\/tags?post=201308"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}