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Special Issue:
SPECIAL TOPIC — John Tse: Pioneer in high-pressure materials science
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| SPECIAL TOPIC — John Tse: Pioneer in high-pressure materials science |
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Unveiling the superconducting mechanism and phase stability of LaB2H8 under pressure |
| Jirun Wu(吴际润)1, Zefang Wang(王泽方)1, Xin Zhong(钟鑫)1,†, and Hanyu Liu(刘寒雨)1,2,3,‡ |
1 Key Laboratory of Material Simulation Methods and Software of Ministry of Education, College of Physics, Jilin University, Changchun 130012, China; 2 State Key Laboratory of High Pressure and Superhard Materials, College of Physics, Jilin University, Changchun 130012, China; 3 International Center of Future Science, Jilin University, Changchun 130012, China |
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Abstract The recent synthesis of the superhydride LaB$_{2}$H$_{8}$, which exhibits a superconducting transition temperature ($T_{\rm c}$) of 106 K at 90 GPa, offers a promising avenue for exploring high-temperature superconductivity. However, the underlying superconducting mechanism remains elusive. Here, we employ first-principles calculations to systematically investigate the electronic structure, lattice dynamics, electron-phonon coupling, and molecular-orbital features of LaB$_{2}$H$_{8}$. Our analysis reveals that the structural stability and metallic conductivity primarily originate from the covalent B-H bonds within the B$_{2}$H$_{8}$ units. Furthermore, we observe a pronounced softening of low-frequency phonons at elevated pressures, which induces strong electron-phonon coupling and serves as the key driving force for superconductivity in this system. This work not only elucidates the superconducting mechanism in LaB$_{2}$H$_{8}$ but also highlights the importance of covalent hydrogen-based motifs in designing new high-$T_{\rm c}$ superconductors.
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Received: 30 October 2025
Revised: 13 January 2026
Accepted manuscript online: 19 January 2026
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PACS:
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74.25.Dw
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(Superconductivity phase diagrams)
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61.50.Ah
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(Theory of crystal structure, crystal symmetry; calculations and modeling)
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62.50.-p
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(High-pressure effects in solids and liquids)
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| Fund: Project supported by the National Key Research and Development Program of China (Grant Nos. 2023YFA1406002 and 2023YFA1608901), the National Natural Science Foundation of China (Grant Nos. 12574012, 12374009, and T2495231), the Program for Jilin University Science and Technology Innovative Research Team (Grant No. 2021TD-05), the Program for Jilin University Computational Interdisciplinary Innovative Platform, the Strategic Priority Research Program of the Chinese Academy of Sciences (Grant No. XDB33000000), the Fundamental Research Funds for the Central Universities, and computing facilities at the High-Performance Computing Centre of Jilin University, and the Graduate Innovation Fund of Jilin University (Grant No. 2025CX090). |
Corresponding Authors:
Xin Zhong, Hanyu Liu
E-mail: zhongxin@calypso.cn;hanyuliu@jlu.edu.cn
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Cite this article:
Jirun Wu(吴际润), Zefang Wang(王泽方), Xin Zhong(钟鑫), and Hanyu Liu(刘寒雨) Unveiling the superconducting mechanism and phase stability of LaB2H8 under pressure 2026 Chin. Phys. B 35 057401
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[1] Orenstein J and Millis A J 2000 Science 288 468 [2] Scanlan R M, Malozemoff A P and Larbalestier D C 2004 Proc. IEEE 92 1639 [3] Simon A 1997 Angew. Chem. Int. Ed. Engl. 36 1788 [4] Zhang Z, Cui T, Hutcheon M J, Shipley A M, Song H, Du M, Kresin V Z, Duan D, Pickard C J and Yao Y 2022 Phys. Rev. Lett. 128 047001 [5] Li S, Wang H, Sun W, Lu C and Peng F 2022 Phys. Rev. B 105 224107 [6] Liang X, Bergara A, Wang L, Wen B, Zhao Z, Zhou X, He J, Gao G and Tian Y 2019 Phys. Rev. B 99 100505 [7] Jiang Q, Zhang Z, Song H, Ma Y, Sun Y, Miao M, Cui T and Duan D 2024 Fundam. Res. 4 550 [8] Gao M, Yan XW, Lu Z Y and Xiang T 2021 Phys. Rev. B 104 L100504 [9] Di Cataldo S, Heil C, Von Der Linden W and Boeri L 2021 Phys. Rev. B 104 L020511 [10] Di Cataldo S, Von Der LindenWand Boeri L 2022 npj Comput. Mater. 8 2 [11] Lucrezi R, Di Cataldo S, Von Der Linden W, Boeri L and Heil C 2022 npj Comput. Mater. 8 119 [12] Ma T, Zhang Z, Du M, Huo Z, ChenW, Tian F, Duan D and Cui T 2023 Mater. Today Phys. 38 101233 [13] Sun Y, Wang Y, Zhong X, Xie Y and Liu H 2022 Phys. Rev. B 106 024519 [14] Liu L, Peng F, Song P, Liu X, Zhang L, Huang X, Niu C, Liu C, Zhang W, Jia Y and Zhang Z 2023 Phys. Rev. B 107 L020504 [15] Ma L, Wang K, Xie Y, Yang X, Wang Y, Zhou M, Liu H, Yu X, Zhao Y, Wang H, Liu G and Ma Y 2022 Phys. Rev. Lett. 128 167001 [16] Li Z, He X, Zhang C, Wang X, Zhang S, Jia Y, Feng S, Lu K, Zhao J, Zhang J, Min B, Long Y, Yu R, Wang L, Ye M, Zhang Z, Prakapenka V, Chariton S, Ginsberg P A, Bass J, Yuan S, Liu H and Jin C 2022 Nat. Commun. 13 2863 [17] Sun Y, Wu J, Yang L, Zhang S, Zhong X and Liu H 2025 Comput. Mater. Today 7 100035 [18] Wang H, Tse J S, Tanaka K, Iitaka T and Ma Y 2012 Proc. Natl. Acad. Sci. USA 109 6463 [19] Wang Y, Lv J, Zhu L and Ma Y 2012 Comput. Phys. Commun. 183 2063 [20] Wang Y, Lv J, Zhu L and Ma Y 2010 Phys. Rev. B 82 094116 [21] Peng F, Sun Y, Pickard C J, Needs R J, Wu Q and Ma Y 2017 Phys. Rev. Lett. 119 107001 [22] Liu H, Naumov I I, Hoffmann R, Ashcroft N W and Hemley R J 2017 Proc. Natl. Acad. Sci. USA 114 6990 [23] Laniel D, Trybel F, Winkler B, Knoop F, Fedotenko T, Khandarkhaeva S, Aslandukova A, Meier T, Chariton S, Glazyrin K, Milman V, Prakapenka V, Abrikosov I A, Dubrovinsky L and Dubrovinskaia N 2022 Nat. Commun. 13 6987 [24] Somayazulu M, Ahart M, Mishra A K, Geballe Z M, Baldini M, Meng Y, Struzhkin V V and Hemley R J 2019 Phys. Rev. Lett. 122 027001 [25] Kong P, Minkov V S, Kuzovnikov M A, Drozdov A P, Besedin S P, Mozaffari S, Balicas L, Balakirev F F, Prakapenka V B, Chariton S, Knyazev D A, Greenberg E and Eremets M I 2021 Nat. Commun. 12 5075 [26] Wang Y, Wang K, Sun Y, Ma L, Wang Y, Zou B, Liu G, Zhou M and Wang H 2022 Chin. Phys. B 31 106201 [27] Li Y, Hao J, Liu H, Tse J S, Wang Y and Ma Y 2015 Sci Rep 5 9948 [28] Troyan I A, Semenok D V, Kvashnin A G, et al. 2021 Adv. Mater. 33 2006832 [29] He X L, Zhang P, Ma Y, Li H, Zhong X,Wang Y, Liu H and Ma Y 2023 Phys. Rev. B 107 134509 [30] He X L, Zhao W, Xie Y, Hermann A, Hemley R J, Liu H and Ma Y 2024 Proc. Natl. Acad. Sci. USA 121 e2401840121 [31] An D, Conway Lewis J, Duan D, Zhang Z, Jiang Q, Song H, Huo Z, Pickard C J and Cui T 2025 Adv. Funct. Mater. 35 2418692 [32] Zhao W, Duan D, Du M, Yao X, Huo Z, Jiang Q and Cui T 2022 Phys. Rev. B 106 014521 [33] Song Y, Ma C, Wang H, Zhou M, Qi Y, Cao W, Li S, Liu H, Liu G and Ma Y 2025 arXiv arXiv:2510.01273 [34] Sun Y, Lv J, Xie Y, Liu H and Ma Y 2019 Phys. Rev. Lett. 123 097001 [35] Du M, Song H, Zhang Z, Duan D and Cui T 2022 Research 2022 20229784309 [36] Sun Y, Wang Y, Zhong X, Xie Y and Liu H 2022 Phys. Rev. B 106 024519 [37] Markopoulos G, Kroll P and Hoffmann R 2010 J. Am. Chem. Soc. 132 748 [38] Muramatsu T, Wanene W K, Somayazulu M, Vinitsky E, Chandra D, Strobel T A, Struzhkin V V and Hemley R J 2015 J. Phys. Chem. C 119 18007 [39] Vinitsky E A, Muramatsu T, Somayazulu M, Wanene W K, Liu Z, Chandra D and Hemley R J 2016 J. Phys.: Condens. Matter 28 505701 [40] Meng D, Sakata M, Shimizu K, Iijima Y, Saitoh H, Sato T, Takagi S and Orimo S 2019 Phys. Rev. B 99 024508 [41] Song Y, Bi J, Nakamoto Y, Shimizu K, Liu H, Zou B, Liu G, Wang H and Ma Y 2023 Phys. Rev. Lett. 130 266001 [42] Dolui K, Conway L J, Heil C, Strobel T A, Prasankumar R P and Pickard C J 2024 Phys. Rev. Lett. 132 166001 [43] Liang X, Bergara A, Wei X, Song X, Wang L, Sun R, Liu H, Hemley R J, Wang L, Gao G and Tian Y 2021 Phys. Rev. B 104 134501 [44] Song X, Hao X, Wei X, He X L, Liu H, Ma L, Liu G, Wang H, Niu J, Wang S, Qi Y, Liu Z, Hu W, Xu B, Wang L, Gao G and Tian Y 2024 J. Am. Chem. Soc. 146 13797 [45] Wang Z, Zhao H J, Zhong X, Liu H and Ma Y 2024 Phys. Rev. B 109 214506 [46] Kresse G and Furthmüller J 1996 Phys. Rev. B 54 11169 [47] Blöchl P E 1994 Phys. Rev. B 50 17953 [48] Perdew J P and Wang Y 1992 Phys. Rev. B 45 13244 [49] Perdew J P, Burke K and Ernzerhof M 1996 Phys. Rev. Lett. 77 3865 [50] Wang V, Xu N, Liu J C, Tang G and Geng W T 2021 Comput. Phys. Commun. 267 108033 [51] Deringer V L, Tchougréeff A L and Dronskowski R 2011 J. Phys. Chem. A 115 5461 [52] Baroni S, De Gironcoli S, Dal Corso A and Giannozzi P 2001 Rev. Mod. Phys. 73 515 [53] Giannozzi P, Baroni S, Bonini N, et al. 2009 J. Phys.: Condens. Matter 21 395502 [54] Kresse G and Joubert D 1999 Phys. Rev. B 59 1758 [55] Allen P B and Dynes R C 1975 Phys. Rev. B 12 905 [56] Eliashberg G M 1960 Sov. Phys. JETP 11 696 [57] Gillespie R J and Nyholm R S 1957 Q. Rev. Chem. Soc. 11 339 [58] Gillespie R J 1963 J. Chem. Educ. 40 295 |
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