四方晶系
超导电性
铋
拉曼光谱
材料科学
电子结构
相(物质)
相变
声子
凝聚态物理
晶体结构
结晶学
六角相
化学
物理
光学
冶金
量子力学
作者
Xiaomeng Wang,Juefei Wu,Jinghui Wang,Tong Chen,Hao Gao,Pengchao Lu,Qun Chen,Chi Ding,Jinsheng Wen,Jian Sun
出处
期刊:Physical review
[American Physical Society]
日期:2018-11-27
卷期号:98 (17)
被引量:26
标识
DOI:10.1103/physrevb.98.174112
摘要
Using a machine-learning accelerated crystal structural search, and ab initio calculations together with high-pressure Raman measurements, we study the crystal and electronic structures of bismuth iodide (BiI) systematically up to 50 GPa. We find that the ambient $C2/m$ phase ($\ensuremath{\beta}\ensuremath{-}\mathrm{B}{\mathrm{i}}_{4}{\mathrm{I}}_{4}$) transforms across a tetragonal $P{4}_{2}/mmc$ phase at 8.5 GPa and finally to a hexagonal $P{6}_{3}/mmc$ phase at 28.2 GPa. Our high-pressure Raman experiments identify a phase transition at around 8.6 GPa, and the experimental Raman modes evolution agrees with our calculations reasonably. Band-structures calculations suggest the BiI system undergoes a pressure-induced topological phase transition from a topological metal ($P{4}_{2}/mmc$ phase) to a trivial metal (the $P{6}_{3}/mmc$ phase). Our electron-phonon coupling calculations show both the $P{4}_{2}/mmc$ and $P{6}_{3}/mmc$ phases are superconductors and the estimated superconducting critical temperature agrees with previous measurements. Our study shows the previously reported pressure-induced superconductivity in BiI should originate from structure phase transitions.
科研通智能强力驱动
Strongly Powered by AbleSci AI