TY - JOUR
T1 - Valley-dimensionality locking of superconductivity in cubic phosphides
AU - Ao, Lingyi
AU - Huang, Junwei
AU - Qin, Feng
AU - Li, Zeya
AU - Ideue, Toshiya
AU - Akhtari, Keivan
AU - Chen, Peng
AU - Bi, Xiangyu
AU - Qiu, Caiyu
AU - Huang, Dajian
AU - Chen, Long
AU - Belosludov, Rodion V.
AU - Gou, Huiyang
AU - Ren, Wencai
AU - Nojima, Tsutomu
AU - Iwasa, Yoshihiro
AU - Bahramy, Mohammad Saeed
AU - Yuan, Hongtao
N1 - Publisher Copyright:
Copyright © 2023 The Authors.
PY - 2023
Y1 - 2023
N2 - Two-dimensional superconductivity is primarily realized in atomically thin layers through extreme exfoliation, epitaxial growth, or interfacial gating. Apart from their technical challenges, these approaches lack sufficient control over the Fermiology of superconducting systems. Here, we offer a Fermiology-engineering approach, allowing us to desirably tune the coherence length of Cooper pairs and the dimensionality of superconducting states in arsenic phosphides AsxP1−x under hydrostatic pressure. We demonstrate how this turns these compounds into tunable two-dimensional superconductors with a dome-shaped phase diagram even in the bulk limit. This peculiar behavior is shown to result from an unconventional valley-dimensionality locking mechanism, driven by a delicate competition between three-dimensional hole-type and two-dimensional electron-type energy pockets spatially separated in momentum space. The resulting dimensionality crossover is further discussed to be systematically controllable by pressure and stoichiometry tuning. Our findings pave a unique way to realize and control superconducting phases with special pairing and dimensional orders.
AB - Two-dimensional superconductivity is primarily realized in atomically thin layers through extreme exfoliation, epitaxial growth, or interfacial gating. Apart from their technical challenges, these approaches lack sufficient control over the Fermiology of superconducting systems. Here, we offer a Fermiology-engineering approach, allowing us to desirably tune the coherence length of Cooper pairs and the dimensionality of superconducting states in arsenic phosphides AsxP1−x under hydrostatic pressure. We demonstrate how this turns these compounds into tunable two-dimensional superconductors with a dome-shaped phase diagram even in the bulk limit. This peculiar behavior is shown to result from an unconventional valley-dimensionality locking mechanism, driven by a delicate competition between three-dimensional hole-type and two-dimensional electron-type energy pockets spatially separated in momentum space. The resulting dimensionality crossover is further discussed to be systematically controllable by pressure and stoichiometry tuning. Our findings pave a unique way to realize and control superconducting phases with special pairing and dimensional orders.
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U2 - 10.1126/sciadv.adf6758
DO - 10.1126/sciadv.adf6758
M3 - Article
C2 - 37683003
AN - SCOPUS:85170348204
SN - 2375-2548
VL - 9
JO - Science advances
JF - Science advances
IS - 36
M1 - eadf6758
ER -