Reuse & Permissions

It is not necessary to obtain permission to reuse this article or its components as it is available under the terms of the Creative Commons Attribution 4.0 International license. This license permits unrestricted use, distribution, and reproduction in any medium, provided attribution to the author(s) and the published article's title, journal citation, and DOI are maintained. Please note that some figures may have been included with permission from other third parties. It is your responsibility to obtain the proper permission from the rights holder directly for these figures.

Export citation

Export citation

Choose format for download:

Download Citation
  • Open Access

Metastability and high-Tc superconductivity in A15-type ternary hydride YSbH6 at moderate pressure

Maélie Caussé1,2,*, Kieran Bozier1, Peter I. C. Cooke1, Stefano Racioppi1, and Chris J. Pickard1,2

  • 1Department of Materials Science and Metallurgy, University of Cambridge, 27 Charles Babbage Road, Cambridge CB30FS, United Kingdom
  • 2Advanced Institute for Materials Research, Tohoku University, Sendai 980-8577, Japan

  • *Contact author: mc2552@cam.ac.uk

Phys. Rev. B 113, 094521 – Published 23 March, 2026

DOI: https://doi.org/10.1103/9f4v-4bvs

Abstract

The discovery of high-temperature superconductors remains a central challenge in materials science. Hydrogen-rich compounds are among the most promising candidates, as they can exhibit phonon-mediated superconductivity at elevated critical temperatures, though their stabilization typically requires extreme pressures. Here, we report the identification of YSbH6 as a promising superconductor by a multistage high-throughput screening on ternary A15-type hydrides, followed by a high-throughput computational search of the Y-Sb-H system, accelerated by ephemeral data derived potentials. The cubic Pm3¯ YSbH6 phase exhibits a predicted critical temperature of 118 K at 50 GPa, among the highest Tc reported to date for an A15 hydride at this pressure. Thermodynamic analysis shows that YSbH6 lies ∼100meV/ atom above the convex hull at 50 GPa, but only 26 meV/atom above the hull at 120 GPa, suggesting possible metastability and synthesis at similar high-pressure conditions. The phase is dynamically stable over a wide pressure range (20–120 GPa), displays kinetic stability at 50 GPa, and elastic stability at 20 and 50 GPa, key ingredients for long-lived metastable behavior at moderate pressures. These results highlight YSbH6 as a benchmark case illustrating the balance between high-Tc performance and limited thermodynamic stability in ternary hydrides, and underscore the importance of combined dynamic, thermodynamic, kinetic, and elastic stability analyses for guiding experimental synthesis of metastable superconductors.

View figure in article

Physics Subject Headings (PhySH)

Article Text

Supplemental Material

References (80)

  1. M. Somayazulu, M. Ahart, A. K. Mishra, Z. M. Geballe, M. Baldini, Y. Meng, V. V. Struzhkin, and R. J. Hemley, Evidence for superconductivity above 260 K in lanthanum superhydride at megabar pressures, Phys. Rev. Lett. 122, 027001 (2019).
  2. A. P. Drozdov, P. P. Kong, V. S. Minkov, S. P. Besedin, M. A. Kuzovnikov, S. Mozaffari, D. A. Balicas, M. Tkacz, and M. I. Eremets, Superconductivity at 250 K in lanthanum hydride under high pressures, Nature (London) 569, 528 (2019).
  3. H. Wang, J. S. Tse, K. Tanaka, T. Iitaka, and Y. Ma, Superconductive sodalite-like clathrate calcium hydride at high pressures, Proc. Natl. Acad. Sci. USA 109, 6463 (2012).
  4. D. Duan, Y. Liu, F. Tian, D. Li, X. Huang, Z. Zhao, H. Yu, B. Liu, W. Tian, and T. Cui, Pressure-induced metallization of dense (H2S)2H2 with high-Tc superconductivity, Sci. Rep. 4, 6968 (2014).
  5. F. Peng, Y. Sun, C. J. Pickard, R. J. Needs, Q. Wu, and Y. Ma, Hydrogen clathrate structures in rare earth hydrides at high pressures: Possible route to room-temperature superconductivity, Phys. Rev. Lett. 119, 107001 (2017).
  6. H. Liu, I. I. Naumov, R. Hoffmann, N. W. Ashcroft, and R. J. Hemley, Potential high-Tc superconducting lanthanum and yttrium hydrides at high pressure, Proc. Natl. Acad. Sci. USA 114, 6990 (2017).
  7. S. Di Cataldo, C. Heil, W. von der Linden, and L. Boeri, LaBH8: Towards high-Tc low-pressure superconductivity in ternary superhydrides, Phys. Rev. B 104, L020511 (2021).
  8. X. Zhang, Y. Zhao, and G. Yang, Superconducting ternary hydrides under high pressure, WIREs Comput. Mol. Sci. 12, e1582 (2021).
  9. K. Dolui, L. J. Conway, C. Heil, T. A. Strobel, R. P. Prasankumar, and C. J. Pickard, Feasible route to high-temperature ambient-pressure hydride superconductivity, Phys. Rev. Lett. 132, 166001 (2024).
  10. A. Sanna, T. F. T. Cerqueira, Y.-W. Fang, I. Errea, A. Ludwig, and M. A. L. Marques, Prediction of ambient pressure conventional superconductivity above 80 K in hydride compounds, npj Comput. Mater. 10, 44 (2024).
  11. X. Liang, A. Bergara, X. Wei, X. Song, L. Wang, R. Sun, H. Liu, R. J. Hemley, L. Wang, G. Gao, and Y. Tian, Prediction of high-Tc superconductivity in ternary lanthanum borohydrides, Phys. Rev. B 104, 134501 (2021).
  12. Y. Song, J. Bi, Y. Nakamoto, K. Shimizu, H. Liu, B. Zou, G. Liu, H. Wang, and Y. Ma, Stoichiometric ternary superhydride LaBeH8 as a new template for high-temperature superconductivity at 110 K under 80 GPa, Phys. Rev. Lett. 130, 266001 (2023).
  13. M. F. Hansen, L. J. Conway, K. Dolui, C. Heil, C. J. Pickard, A. Pakhomova, M. Mezouar, M. Kunz, R. P. Prasankumar, and T. A. Strobel, Synthesis of Mg2IrH5: A potential pathway to high-Tc hydride superconductivity at ambient pressure, Phys. Rev. B 110, 214513 (2024).
  14. M. Caussé, G. Geneste, L. Toraille, B. Guigue, J.-B. Charraud, V. Paul-Boncour, and P. Loubeyre, Synthesis of Laves phase hydrides YFe2H6 and YFe2H7 at high pressure: Reaching a limit of interstitial hydrogen uptake, J. Alloys Compd. 1010, 177392 (2025).
  15. M. Caussé, L. Toraille, G. Geneste, and P. Loubeyre, Synthesis of Y3Fe4H20 as a new prototype structure for ternary superhydrides recoverable at ambient pressure, arXiv:2505.16799.
  16. E. Zurek, Hydrides of the alkali metals and alkaline earth metals under pressure, Comments Inorg. Chem. 37, 78 (2017).
  17. J. A. Flores-Livas, L. Boeri, A. Sanna, G. Profeta, R. Arita, and M. Eremets, A perspective on conventional high-temperature superconductors at high pressure: Methods and materials, Phys. Rep. 856, 1 (2020).
  18. C. J. Pickard, I. Errea, and M. I. Eremets, Superconducting hydrides under pressure, Annu. Rev. Condens. Matter Phys. 11, 57 (2020).
  19. L. Boeri, R. Hennig, P. Hirschfeld, G. Profeta, A. Sanna, E. Zurek, W. E. Pickett, M. Amsler, R. Dias, M. I. Eremets, C. Heil, R. J. Hemley, H. Liu, Y. Ma, C. Pierleoni, A. N. Kolmogorov, N. Rybin, D. Novoselov, V. Anisimov, A. R. Oganov, et al., The 2021 room-temperature superconductivity roadmap, J. Phys.: Condens. Matter 34, 183002 (2022).
  20. W. Zhao, X. Huang, Z. Zhang, S. Chen, M. Du, D. Duan, and T. Cui, Superconducting ternary hydrides: Progress and challenges, Natl. Sci. Rev. 11, nwad307 (2024).
  21. X. Wei, X. Hao, A. Bergara, E. Zurek, X. Liang, L. Wang, X. Song, P. Li, L. Wang, G. Gao, and Y. Tian, Designing ternary superconducting hydrides with A15-type structure at moderate pressures, Mater. Today Phys. 34, 101086 (2023).
  22. X. Li, N. Wang, Y. Ma, J. Bi, and H. Liu, Design of moderate-pressure superconductivity in a ternary hydride system, J. Mater. Chem. C 1316145 (2025).
  23. T. F. T. Cerqueira, Y.-W. Fang, I. Errea, A. Sanna, and M. A. L. Marques, Searching materials space for hydride superconductors at ambient pressure, Adv. Funct. Mater. 34, 2404043 (2024).
  24. D. Wines and K. Choudhary, Data-driven design of high pressure hydride superconductors using DFT and deep learning, Mater. Futures 3, 025602 (2024).
  25. Y. He, J. Lu, X. Wang, and J. J. Shi, Phonon-mediated superconductivity in the metal-bonded perovskite Al4H up to 54 K under ambient pressure, Phys. Rev. B 108, 054515 (2023).
  26. M. Du, H. Huang, Z. Zhang, M. Wang, H. Song, D. Duan, and T. Cui, High-temperature superconductivity in perovskite hydride below 10 GPa, Adv. Sci. 11, 2408370 (2024).
  27. D. Dangic, Y.-W. Fang, T. F. T. Cerqueira, A. Sanna, M. A. L. Marques, and I. Errea, Ambient pressure high temperature superconductivity in RbPH3 facilitated by ionic anharmonicity, Comput. Mater. Today 8, 100043 (2025).
  28. Y. Ma, D. Duan, Z. Shao, H. Yu, H. Liu, F. Tian, X. Huang, D. Li, B. Liu, and T. Cui, Divergent synthesis routes and superconductivity of ternary hydride MgSiH6 at high pressure, Phys. Rev. B 96, 144518 (2017).
  29. M. Gao, X.-W. Yan, Z.-Y. Lu, and T. Xiang, Phonon-mediated high-temperature superconductivity in the ternary borohydride KB2H8 under pressure near 12 GPa, Phys. Rev. B 104, L100504 (2021).
  30. G. M. Shutov, D. V. Semenok, I. A. Kruglov, and A. R. Oganov, Ternary superconducting hydrides in the La–Mg–H system, Mater. Today Phys. 40, 101300 (2024).
  31. Y. Wang, K. Hu, and M. Pan, Prediction of high-temperature superconductors with Tc up to 214.3 K in Mg-Zr-H ternary hydrides, Mater. Today Phys. 53, 101695 (2025).
  32. S. Yang, M.-H. Du, H.-H. Dong, B.-Y. Li, H.-J. Sun, W. Qin, W. Zhang, W.-H. Yang, and W.-C. Lu, Ternary superconducting titanium hydrides stabilized via lithium, Phys. B 701, 416971 (2025).
  33. J. Zhao, B. Chen, S. Li, Y. Chang, X. Yang, M. Chen, and D. Li, Prediction of pressure-induced superconductivity in the ternary systems CaYH2n (n = 3–6) at moderate pressures, J. Mater. Chem. C 13, 4128 (2025).
  34. Y.-M. Zhang, Z.-Y. Qiu, S.-Y. Ni, Z.-T. Liu, M. Zhang, and J. Gao, Superconductivity and stability study of ASc2H24 (A = Y, La, Ac) under high pressure, Phys. Chem. Chem. Phys. 27, 14321 (2025).
  35. P. Tsuppayakorn-aek, W. Luo, and T. Bovornratanaraks, Phonon-mediated high-temperature superconductivity in clathrate superhydride ThCeH18 under pressure, Sci. Rep. 15, 20864 (2025).
  36. R. Arita, L. Boeri, M. Calandra, G. Profeta, A. Sanna, R. Hennig, P. Hirschfeld, and E. Zurek, International workshop “Challenges in designing room temperature superconductors” (2025), https://cdrts2025.wordpress.com.
  37. C. J. Pickard and R. J. Needs, High-pressure phases of silane, Phys. Rev. Lett. 97, 045504 (2006).
  38. M. Born, On the stability of crystal lattices. I, Math. Proc. Cambridge Philos. Soc. 36, 160 (2008).
  39. P. P. Ferreira, L. J. Conway, A. Cucciari, S. Di Cataldo, F. Giannessi, E. Kogler, L. T. F. Eleno, C. J. Pickard, C. Heil, and L. Boeri, Search for ambient superconductivity in the Lu-N-H system, Nat. Commun. 14, 5367 (2023).
  40. J. Vetrano, G. Guthrie, and H. Kissinger, Superconductivity in hydrides with A-15 structure, Phys. Lett. A 26, 45 (1967).
  41. K. Abe and N. W. Ashcroft, Quantum disproportionation: The high hydrides at elevated pressures, Phys. Rev. B 88, 174110 (2013).
  42. M. A. Kuzovnikov, T. Hansen, A. S. Ivanov, A. I. Kolesnikov, V. I. Kulakov, S. Savvin, and M. Tkacz, High-pressure synthesis and neutron scattering study of tantalum hydride TaH1.23(5) and a tantalum polymorph with A15-type structure, Phys. Rev. B 110, 184113 (2024).
  43. C. Deng, M. Wang, S. Guo, H. Huang, M. Du, D. Duan, H. Song, and T. Cui, Prediction of high critical temperature superconductors in ternary Y-Hf-H system under high pressure, Chin. Phys. Lett. 42, 070711 (2025).
  44. K. Zhang, J. Yu, Y. Zhang, J. Guo, Y. Wang, C. Jiang, X. Huang, and T. Cui, Synthesis and superconductivity of ternary A15-(Lu, Y)4H23 at high pressures, J. Am. Chem. Soc. 147, 11879 (2025).
  45. K. Zhang, J. Guo, Y. Wang, X. Wu, X. Huang, and T. Cui, Robust superconducting stability of ternary hydride Im3¯m (Y, Ca)H6 upon decompression, Chin. Phys. Lett. 42, 110704 (2025).
  46. S. Racioppi, A. Otero-de-la Roza, S. Hajinazar, and E. Zurek, Powder X-ray diffraction assisted evolutionary algorithm for crystal structure prediction, Digit. Discov. 4, 73 (2025).
  47. K. Bozier, K. Wang, B. Monserrat, and C. J. Pickard, High-throughput superconducting Tc predictions through density of states rescaling, Phys. Rev. B 113, 064507 (2026).
  48. T. Koretsune and R. Arita, Efficient method to calculate the electron–phonon coupling constant and superconducting transition temperature, Comput. Phys. Commun. 220, 239 (2017).
  49. C. Morice, R. Akashi, T. Koretsune, S. S. Saxena, and R. Arita, Weak phonon-mediated pairing in BiS2 superconductor from first principles, Phys. Rev. B 95, 180505(R) (2017).
  50. See Supplemental Material at http://link.aps.org/supplemental/10.1103/9f4v-4bvs for details of the calculations of the superconducting critical temperatures, on the dynamic stability, elastic properties, convex hull at 50 GPa, kinetic stability, bonding and charge of the structure, and possible synthesis routes, which also contains Refs. [37, 53, 55, 56, 66, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79].
  51. D. R. Hamann, Optimized norm-conserving Vanderbilt pseudopotentials, Phys. Rev. B 88, 085117 (2013).
  52. M. J. van Setten, M. Giantomassi, E. Bousquet, M. J. Verstraete, D. R. Hamann, X. Gonze, and G. M. Rignanese, The PseudoDojo: Training and grading a 85 element optimized norm-conserving pseudopotential table, Comput. Phys. Commun. 226, 39 (2018).
  53. E. Kogler, D. Spath, R. Lucrezi, H. Mori, Z. Zhu, Z. Li, E. R. Margine, and C. Heil, Isome: Streamlining high-precision Eliashberg calculations, Comput. Phys. Commun. 315109720 (2025).
  54. C. J. Pickard, Ephemeral data derived potentials for random structure search, Phys. Rev. B 106, 014102 (2022).
  55. P. T. Salzbrenner, S. H. Joo, L. J. Conway, P. I. C. Cooke, B. Zhu, M. P. Matraszek, W. C. Witt, and C. J. Pickard, Developments and further applications of ephemeral data derived potentials, J. Chem. Phys. 159, 144801 (2023).
  56. C. J. Pickard, Beyond theory-driven discovery: Introducing hot random search and datum-derived structures, Faraday Discuss. 256, 61 (2025).
  57. Y. Li, J. Hao, H. Liu, J. S. Tse, Y. Wang, and Y. Ma, Pressure-stabilized superconductive yttrium hydrides, Sci. Rep. 5, 9948 (2015).
  58. P. Kong, V. S. Minkov, M. A. Kuzovnikov, A. P. Drozdov, S. P. Besedin, S. Mozaffari, L. Balicas, F. F. Balakirev, V. B. Prakapenka, S. Chariton, D. A. Knyazev, E. Greenberg, and M. I. Eremets, Superconductivity up to 243 K in the yttrium-hydrogen system under high pressure, Nat. Commun. 12, 5075 (2021).
  59. I. A. Troyan, D. V. Semenok, A. G. Kvashnin, A. V. Sadakov, O. A. Sobolevskiy, V. M. Pudalov, A. G. Ivanova, V. B. Prakapenka, E. Greenberg, A. G. Gavriliuk, I. S. Lyubutin, V. V. Struzhkin, A. Bergara, I. Errea, R. Bianco, M. Calandra, F. Mauri, L. Monacelli, R. Akashi, and A. R. Oganov, Anomalous high-temperature superconductivity in YH6, Adv. Mater. 33, 2006832 (2021).
  60. Y. Wang, K. Wang, Y. Sun, L. Ma, Y. Wang, B. Zou, G. Liu, M. Zhou, and H. Wang, Synthesis and superconductivity in yttrium superhydrides under high pressure, Chin. Phys. B 31, 106201 (2022).
  61. K. Abe and N. W. Ashcroft, Stabilization and highly metallic properties of heavy Group-V hydrides at high pressures, Phys. Rev. B 92, 224109 (2015).
  62. J. P. Perdew, A. Ruzsinszky, G. I. Csonka, O. A. Vydrov, G. E. Scuseria, L. A. Constantin, X. Zhou, and K. Burke, Restoring the density-gradient expansion for exchange in solids and surfaces, Phys. Rev. Lett. 100, 136406 (2008).
  63. R. Lucrezi, P. P. Ferreira, S. Hajinazar, H. Mori, H. Paudyal, E. R. Margine, and C. Heil, Full-bandwidth anisotropic Migdal-Eliashberg theory and its application to superhydrides, Commun. Phys. 7, 33 (2024).
  64. A. Togo, L. Chaput, T. Tadano, and I. Tanaka, Implementation strategies in phonopy and phono3py, J. Phys.: Condens. Matter 35, 353001 (2023).
  65. F. Mouhat and F. X. Coudert, Necessary and sufficient elastic stability conditions in various crystal systems, Phys. Rev. B 90, 224104 (2014).
  66. R. F. W. Bader, Atoms in Molecules: A Quantum Theory, International Series of Monographs on Chemistry (Oxford University Press, Oxford, 1990), Vol. 22.
  67. I. Errea, F. Belli, L. Monacelli, A. Sanna, T. Koretsune, T. Tadano, R. Bianco, M. Calandra, R. Arita, F. Mauri, and J. A. Flores-Livas, Quantum crystal structure in the 250-kelvin superconducting lanthanum hydride, Nature (London) 578, 66 (2020).
  68. S. J. Clark, M. D. Segall, C. J. Pickard, P. J. Hasnip, M. I. J. Probert, K. Refson, and M. C. Payne, First principles methods using CASTEP, Z. Kristallogr. Cryst. Mater. 220, 567 (2005).
  69. J. P. Perdew, K. Burke, and M. Ernzerhof, Generalized gradient approximation made simple, Phys. Rev. Lett. 77, 3865 (1996).
  70. P. Giannozzi, O. Baseggio, P. Bonfà, D. Brunato, R. Car, I. Carnimeo, C. Cavazzoni, S. de Gironcoli, P. Delugas, F. Ferrari Ruffino, A. Ferretti, N. Marzari, I. Timrov, A. Urru, and S. Baroni, Quantum espresso toward the exascale, J. Chem. Phys. 152, 154105 (2020).
  71. P. B. Allen and R. C. Dynes, Transition temperature of strong-coupled superconductors reanalyzed, Phys. Rev. B 12, 905 (1975).
  72. E. R. Margine and F. Giustino, Anisotropic Migdal-Eliashberg theory using Wannier functions, Phys. Rev. B 87, 024505 (2013).
  73. H. Lee, S. Poncé, K. Bushick, S. Hajinazar, J. Lafuente-Bartolome, J. Leveillee, C. Lian, J.-M. Lihm, F. Macheda, H. Mori, H. Paudyal, W. H. Sio, S. Tiwari, M. Zacharias, X. Zhang, N. Bonini, E. Kioupakis, E. R. Margine, and F. Giustino, Electron–phonon physics from first principles using the EPW code, npj Comput. Mater. 9, 156 (2023).
  74. G. Kresse and J. Furthmüller, Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set, Phys. Rev. B 54, 11169 (1996).
  75. J. W. Furness, A. D. Kaplan, J. Ning, J. P. Perdew, and J. Sun, Accurate and numerically efficient r2SCAN meta-generalized gradient approximation, J. Phys. Chem. Lett. 11, 8208 (2020).
  76. A. M. Walker, The effect of pressure on the elastic properties and seismic anisotropy of diopside and jadeite from atomic scale simulation, Phys. Earth Planet. Inter. 192-193, 81 (2012).
  77. G. Gervasio, R. Bianchi, and D. Marabello, About the topological classification of the metal-metal bond, Chem. Phys. Lett. 387, 481 (2004).
  78. C. Gatti, Chemical bonding in crystals: New directions, Z. Kristallogr. 220, 399 (2005).
  79. P. Macchi and A. Sironi, Chemical bonding in transition metal carbonyl clusters: Complementary analysis of theoretical and experimental electron densities, Coord. Chem. Rev. 238-239, 383 (2003).
  80. M. Causse et al., “Metastability and high-Tc superconductivity in A15-type ternary hydride YSbH6 at moderate pressure”, [Data set], Zenodo (2025), https://doi.org/10.5281/ZENODO.18701516.

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation