Cavendish, H. Experiments to determine the density of the Earth. Phil. Trans. R. Soc. Lond. 88, 469–526 (1798).
Abbott, B. P. et al. Observation of gravitational waves from a binary black hole merger. Phys. Rev. Lett. 116, 061102 (2016).
The Event Horizon Telescope Collaboration et al. First M87 Event Horizon Telescope results. IV. Imaging the central supermassive black hole. Astrophys. J. Lett. 875, L1 (2019).
Driesse, M. et al. Conservative black hole scattering at Fifth Post-Minkowskian and First Self-Force Order. Phys. Rev. Lett. 132, 241402 (2024).
Quinn, T., Parks, H., Speake, C. & Davis, R. Improved determination of G using two methods. Phys. Rev. Lett. 111, 101102 (2014).
Rosi, G., Sorrentino, F., Cacciapuoti, L., Prevedelli, M. & Tino, G. M. Precision measurement of the Newtonian gravitational constant using cold atoms. Nature 510, 518–521 (2014).
Li, Q. et al. Measurements of the gravitational constant using two independent methods. Nature 560, 582–588 (2018).
Ding, J. et al. Constraints on the velocity and spin dependent exotic interaction at the micrometer range. Phys. Rev. Lett. 124, 161801 (2020).
Li, S., Zhang, W., Luo, R., Liu, J. & Luo, P. Improved limits on the spin- and velocity-dependent exotic interaction in the micrometer range. Phys. Rev. Lett. 134, 251601 (2025).
Kapner, D. J. et al. Tests of the gravitational inverse-square law below the dark-energy length scale. Phys. Rev. Lett. 98, 021101 (2007).
Ke, J. et al. Combined test of the gravitational inverse-square law at the centimeter range. Phys. Rev. Lett. 126, 211101 (2021).
Quinn, T. J., Speake, C. C., Richman, S. J., Davis, R. S. & Picard, A. A new determination of G using two methods. Phys. Rev. Lett. 87, 111101 (2001).
Xue, C. et al. Precision measurement of the Newtonian gravitational constant. Natl Sci. Rev. 7, 1803–1817 (2020).
Lami, L., Pedernales, J. S. & Plenio, M. B. Testing the quantumness of gravity without entanglement. Phys. Rev. X 14, 021022 (2024).
Tobar, G., Manikandan, S. K., Beitel, T. & Pikovski, I. Detecting single gravitons with quantum sensing. Nat. Commun. 15, 7229 (2024).
Xu, P. et al. Satellite testing of a gravitationally induced quantum decoherence model. Science 366, 132–135 (2019).
Bose, S. et al. Spin entanglement witness for quantum gravity. Phys. Rev. Lett. 119, 240401 (2017).
Marletto, C. & Vedral, V. Gravitationally induced entanglement between two massive particles is sufficient evidence of quantum effects in gravity. Phys. Rev. Lett. 119, 240402 (2017).
Petruzziello, L. Quantum gravitational decoherence from fluctuating minimal length and deformation parameter at the Planck scale. Nat. Commun. 12, 4449 (2021).
Fuchs, T. M. et al. Measuring gravity with milligram levitated masses. Sci. Adv. 10, eadk2949 (2024).
Gavartin, E., Verlot, P. & Kippenberg, T. J. A hybrid on-chip optomechanical transducer for ultrasensitive force measurements. Nat. Nanotechnol. 7, 509–514 (2012).
Chowdhury, A., Clerc, M. G., Barbay, S., Philip, I. R. & Braive, R. Weak signal enhancement by nonlinear resonance control in a forced nano-electromechanical resonator. Nat. Commun. 11, 2400 (2020).
Xu, J. et al. Single-cavity loss-enabled nanometrology. Nat. Nanotechnol. 19, 1472–1477 (2024).
Moser, J. et al. Ultrasensitive force detection with a nanotube mechanical resonator. Nat. Nanotechnol. 8, 493–496 (2013).
Buchli, J. et al. Improving cosmological reach of a gravitational wave observatory using Deep Loop Shaping. Science 389, 1012–1015 (2025).
Shan, X. et al. Sub-femtonewton force sensing in solution by super-resolved photonic force microscopy. Nat. Photon. 18, 913–921 (2024).
Wang, L. Y. et al. Enhanced gravity sensing by a levitated mesoscopic nanoparticle. Phys. Rev. Lett. 135, 120803 (2025).
Shomroni, I., Qiu, L., Malz, D., Nunnenkamp, A. & Kippenberg, T. J. Optical backaction-evading measurement of a mechanical oscillator. Nat. Commun. 10, 2086 (2019).
Wang, J. et al. Quantum advantage of one-way squeezing in weak-force sensing. Appl. Phys. Rev. 11, 031409 (2024).
Qvarfort, S., Serafini, A., Barker, P. F. & Bose, S. Gravimetry through non-linear optomechanics. Nat. Commun. 9, 3690 (2018).
Li, B., Ou, L., Lei, Y. & Liu, Y. Cavity optomechanical sensing. Nanophotonics 10, 2799–2832 (2021).
Mäkinen, J. T., Heikkinen, P. J., Autti, S., Zavjalov, V. V. & Eltsov, V. B. Continuous time crystal coupled to a mechanical mode as a cavity-optomechanics-like platform. Nat. Commun. 16, 9050 (2025).
Huang, J., Jordan, K. M., Dada, A. C., Hu, X. & Lundeen, J. S. Enhancing interferometry using weak value amplification with real weak values. Phys. Rev. Lett. 134, 080802 (2025).
Zalalutdinov, M. K. et al. Acoustic cavities in 2D heterostructures. Nat. Commun. 12, 3267 (2021).
Westphal, T., Hepach, H., Pfaff, J. & Aspelmeyer, M. Measurement of gravitational coupling between millimetre-sized masses. Nature 591, 225–228 (2021).
Weis, S. et al. Optomechanically induced transparency. Science 330, 1520–1523 (2010).
Safavi-Naeini, A. H. et al. Electromagnetically induced transparency and slow light with optomechanics. Nature 472, 69–73 (2011).
Karuza, M. et al. Optomechanically induced transparency in a membrane-in-the-middle setup at room temperature. Phys. Rev. A 88, 013804 (2013).
Liu, Y., Mummery, J., Zhou, J. & Sillanpää, M. A. Gravitational forces between nonclassical mechanical oscillators. Phys. Rev. Appl. 15, 034004 (2021).
Depellette, J., Rej, E., Cutting, R. & Sillanpää, M. A. Strong actuation of mass-loaded membranes for gravity studies at the milligram scale. J. Appl. Phys. 139, 144501 (2026).
Schliesser, A., Anetsberger, G., Rivière, R., Arcizet, O. & Kippenberg, T. J. High-sensitivity monitoring of micromechanical vibration using optical whispering gallery mode resonators. New J. Phys. 10, 095015 (2008).
Li, Y. L. & Barker, P. F. Characterization and testing of a micro-g whispering gallery mode optomechanical accelerometer. J. Light. Technol. 36, 3919–3926 (2018).
Zhu, Y. et al. Storing light near an exceptional point. Nat. Commun. 15, 8101 (2024).
Vahala, K. J. Optical microcavities. Nature 424, 839–846 (2003).
Brown, A. W. & Xiao, M. All-optical switching and routing based on an electromagnetically induced absorption grating. Opt. Lett. 30, 699–701 (2005).
Zhang, F., Feng, Y., Chen, X., Ge, L. & Wan, W. Synthetic anti-PT symmetry in a single microcavity. Phys. Rev. Lett. 124, 053901 (2020).
Qin, T. et al. Fast- and slow-light-enhanced light drag in a moving microcavity. Commun. Phys. 3, 118–125 (2020).
Dong, C. et al. Brillouin-scattering-induced transparency and non-reciprocal light storage. Nat. Commun. 6, 6193 (2015).
Kim, J., Kuzyk, M. C., Han, K., Wang, H. & Bahl, G. Non-reciprocal Brillouin scattering induced transparency. Nat. Phys. 11, 275–280 (2015).
Krause, A. G., Winger, M., Blasius, T. D., Lin, Q. & Painter, O. A high-resolution microchip optomechanical accelerometer. Nat. Photon. 6, 768–772 (2012).