Bednorz, J. G. & Müller, K. A. Possible high Tc superconductivity in the Ba–La–Cu–O system. Z. Phys. B 64, 189–193 (1986).

Article 
ADS 

Google Scholar
 

Maeno, Y. et al. Superconductivity in a layered perovskite without copper. Nature 372, 532–534 (1994).

Article 
ADS 

Google Scholar
 

Yan, Y. J. et al. Electron-doped Sr2IrO4: an analogue of hole-doped cuprate superconductors demonstrated by scanning tunneling microscopy. Phys. Rev. X 5, 041018 (2015).


Google Scholar
 

Kim, Y. K., Sung, N. H., Denlinger, J. D. & Kim, B. J. Observation of a d-wave gap in electron-doped Sr2IrO4. Nat. Phys. 12, 37–41 (2015).

Article 

Google Scholar
 

Anisimov, V. I., Bukhvalov, D. & Rice, T. M. Electronic structure of possible nickelate analogs to the cuprates. Phys. Rev. B 59, 7901–7906 (1999).

Article 
ADS 

Google Scholar
 

Chaloupka, J. & Khaliullin, G. Orbital order and possible superconductivity in LaNiO3/LaMO3 superlattices. Phys. Rev. Lett. 100, 016404 (2008).

Article 
ADS 

Google Scholar
 

Hansmann, P. et al. Turning a nickelate Fermi surface into a cuprate-like one through heterostructuring. Phys. Rev. Lett. 103, 016401 (2009).

Article 
ADS 

Google Scholar
 

Sun, H. et al. Signatures of superconductivity near 80 K in a nickelate under high pressure. Nature 621, 493–498 (2023).

Article 
ADS 

Google Scholar
 

Li, F. et al. Bulk superconductivity up to 96 K in pressurized nickelate single crystals. Nature 649, 871–878 (2026).

Article 
ADS 

Google Scholar
 

Zhu, Y. et al. Superconductivity in pressurized trilayer La4Ni3O10−δ single crystals. Nature 631, 531–536 (2024).

Ko, E. K. et al. Signatures of ambient pressure superconductivity in thin film La3Ni2O7. Nature 638, 935–940 (2025).

Article 
ADS 

Google Scholar
 

Zhou, G. et al. Ambient-pressure superconductivity onset above 40 K in (La,Pr)3Ni2O7 films. Nature 640, 641–646 (2025).

Article 
ADS 

Google Scholar
 

Chen, X. et al. Polymorphism in the Ruddlesden–Popper nickelate La3Ni2O7: discovery of a hidden phase with distinctive layer stacking. J. Am. Chem. Soc. 146, 3640–3645 (2024).

Article 
ADS 

Google Scholar
 

Puphal, P. et al. Unconventional crystal structure of the high-pressure superconductor La3Ni2O7. Phys. Rev. Lett. 133, 146002 (2024).

Article 
ADS 

Google Scholar
 

Du, X. et al. Dichotomy in low- and high-energy band renormalizations in trilayer nickelate La4Ni3O10: a comparison with cuprates. Phys. Rev. Lett. 135, 146401 (2025).

Article 

Google Scholar
 

Li, H. et al. Fermiology and electron dynamics of trilayer nickelate La4Ni3O10. Nat. Commun. 8, 704 (2017).

Article 
ADS 

Google Scholar
 

Zhang, Y., Lin, L.-F., Moreo, A., Maier, T. A. & Dagotto, E. Electronic structure, self-doping, and superconducting instability in the alternating single-layer trilayer stacking nickelates La3Ni2O7. Phys. Rev. B 110, L060510 (2024).

Article 
ADS 

Google Scholar
 

LaBollita, H., Bag, S., Kapeghian, J. & Botana, A. S. Electronic correlations, layer distinction, and electron doping in the alternating single-layer–trilayer La3Ni2O7 polymorph. Phys. Rev. B 110, 155145 (2024).

Article 
ADS 

Google Scholar
 

Yang, J. et al. Orbital-dependent electron correlation in double-layer nickelate La3Ni2O7. Nat. Commun. 15, 4373 (2024).

Article 
ADS 

Google Scholar
 

Li, Y. et al. Electronic correlation and pseudogap-like behavior of high-temperature superconductor La3Ni2O7. Chin. Phys. Lett. 41, 087402 (2024).

Article 
ADS 

Google Scholar
 

Abadi, S. et al. Electronic structure of the alternating monolayer-trilayer phase of La3Ni2O7. Phys. Rev. Lett. 134, 126001 (2025).

Article 
ADS 

Google Scholar
 

Fournier, D. et al. Loss of nodal quasiparticle integrity in underdoped YBa2Cu3O6+x. Nat. Phys. 6, 905–911 (2010).

Article 

Google Scholar
 

Ding, H. et al. Electronic excitations in Bi2Sr2CaCu2O8: Fermi surface, dispersion, and absence of bilayer splitting. Phys. Rev. Lett. 76, 1533–1536 (1996).

Article 
ADS 

Google Scholar
 

Feng, D. L. et al. Bilayer splitting in the electronic structure of heavily overdoped Bi2Sr2CaCu2O8+δ. Phys. Rev. Lett. 86, 5550–5553 (2001).

Article 
ADS 

Google Scholar
 

Chuang, Y.-D. et al. Doubling of the bands in overdoped Bi2Sr2CaCu2O8+δ: evidence for c-axis bilayer coupling. Phys. Rev. Lett. 87, 117002 (2001).

Luo, X. et al. Electronic origin of high superconducting critical temperature in trilayer cuprates. Nat. Phys. 19, 1841–1847 (2023).

Article 

Google Scholar
 

Zhou, Y. et al. Investigations of key issues on the reproducibility of high-Tc superconductivity emerging from compressed La3Ni2O7. Matter Radiat. Extremes 10, 027801 (2025).

Wang, Y., Zhang, Y. & Jiang, K. Electronic structure and disorder effect of La3Ni2O7 superconductor. Chin. Phys. B 34, 047105 (2025).

Article 
ADS 

Google Scholar
 

Day, R. P., Zwartsenberg, B., Elfimov, I. S. & Damascelli, A. Computational framework chinook for angle-resolved photoemission spectroscopy. npj Quantum Mater. 4, 54 (2019).

Article 
ADS 

Google Scholar
 

Lechermann, F., Bötzel, S. & Eremin, I. M. Electronic instability, layer selectivity, and Fermi arcs in La3Ni2O7. Phys. Rev. Mater. 8, 074802 (2024).

Article 

Google Scholar
 

Zhang, F. C. & Rice, T. M. Effective Hamiltonian for the superconducting Cu oxides. Phys. Rev. B 37, 3759–3761 (1988).

Article 
ADS 

Google Scholar
 

Lau, B., Berciu, M. & Sawatzky, G. A. High-spin polaron in lightly doped CuO2 planes. Phys. Rev. Lett. 106, 036401 (2011).

Article 
ADS 

Google Scholar
 

Emery, V. J. & Reiter, G. Mechanism for high-temperature superconductivity. Phys. Rev. B 38, 4547–4556 (1988).

Article 
ADS 

Google Scholar
 

Glazer, A. M. The classification of tilted octahedra in perovskites. Acta Crystallogr. Sect. B 28, 3384–3392 (1972).

Article 
ADS 

Google Scholar
 

Chen, X. et al. Electronic and magnetic excitations in La3Ni2O7. Nat. Commun. 15, 9597 (2024).

Article 
ADS 

Google Scholar
 

Gupta, N. K. et al. Anisotropic spin stripe domains in bilayer La3Ni2O7. Nat. Commun. 16, 6560 (2025).

Article 
ADS 

Google Scholar
 

Ren, X. et al. Resolving the electronic ground state of La3Ni2O7−δ films. Commun. Phys. 8, 52 (2025).

Article 

Google Scholar
 

Zhang, J. et al. Intertwined density waves in a metallic nickelate. Nat. Commun. 11, 6003 (2020).

Article 
ADS 

Google Scholar
 

Khasanov, R. et al. Pressure-enhanced splitting of density wave transitions in La3Ni2O7−δ. Nat. Phys. 21, 430–436 (2025).

Article 

Google Scholar
 

Chen, K. et al. Evidence of spin density waves in La3Ni2O7−δ. Phys. Rev. Lett. 132, 256503 (2024).

Article 
ADS 

Google Scholar
 

Li, P. et al. Angle-resolved photoemission spectroscopy of superconducting (La,Pr)3Ni2O7/SrLaAlO4 heterostructures. Natl Sci. Rev. https://doi.org/10.1093/nsr/nwaf205 (2025).

Shen, J. et al. Nodeless superconducting gap and electron-boson coupling in (La,Pr,Sm)3Ni2O7 films. Preprint at http://arxiv.org/abs/2502.17831 (2025).

Wang, B. Y. et al. Electronic structure of compressively strained thin film La2PrNi2O7. Preprint at http://arxiv.org/abs/2504.16372 (2025).

Sui, X. et al. Electronic properties of the bilayer nickelates R3Ni2O7 with oxygen vacancies (R = La or Ce). Phys. Rev. B 109, 205156 (2024).

Article 
ADS 

Google Scholar
 

Lu, C., Zhang, M., Pan, Z., Wu, C. & Yang, F. Impact of pressure and apical oxygen vacancies on superconductivity in La3Ni2O7. Commun. Phys. 8, 354 (2025).

Jiang, G. et al. Intertwined charge and spin instability of La3Ni2O7. Sci. China Phys. Mech. Astron. 68, 297411 (2025).

Article 
ADS 

Google Scholar
 

Zhang, J. et al. High oxygen pressure floating zone growth and crystal structure of the metallic nickelates R4Ni3O10 (R = La, Pr). Phys. Rev. Mater. 4, 083402 (2020).

Article 

Google Scholar
 

Giannozzi, P. et al. QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials. J. Phys.: Condens. Matter 21, 395502 (2009).


Google Scholar
 

Giannozzi, P. et al. Advanced capabilities for materials modelling with QUANTUM ESPRESSO. J. Phys.: Condens. Matter 29, 465901 (2017).


Google Scholar
 

Blöchl, P. E. Projector augmented-wave method. Phys. Rev. B 50, 17953–17979 (1994).

Article 
ADS 

Google Scholar
 

Perdew, J. P., Burke, K. & Ernzerhof, M. Generalized gradient approximation made simple. Phys. Rev. Lett. 77, 3865–3868 (1996).

Article 
ADS 

Google Scholar
 

Mostofi, A. A. et al. An updated version of Wannier90: a tool for obtaining maximally-localised Wannier functions. Comput. Phys. Commun. 185, 2309–2310 (2014).

Article 
ADS 

Google Scholar
 

Momma, K. & Izumi, F. VESTA 3 for three-dimensional visualization of crystal, volumetric and morphology data. J. Appl. Crystallogr. 44, 1272–1276 (2011).

Article 
ADS 

Google Scholar