光致发光
卤化物
材料科学
点反射
自旋电子学
化学物理
对称性破坏
凝聚态物理
激子
量子产额
维数之咒
原子轨道
联轴节(管道)
激发态
量子
热的
作者
Shanshan Wang,Kaiyang Sheng,Hongli Xuan,Xuening Sun,Min Wu,Lingrui Wang,Kai Wang,Xujie Lü,Yongming Sui,Bo Zou
标识
DOI:10.1002/adom.202502779
摘要
Abstract Chiral organic–inorganic lead halide perovskites (chiral OILHPs) have potential application value in spintronics due to their inherent inversion symmetry breaking (ISB) and strong spin‐orbit coupling (SOC) effects. However, the dependence on structural dimensionality has led to some photophysical properties of 1D chiral OILHPs being barely satisfactory, such as low photoluminescence quantum yield (PLQY) and weak spin‐splitting. This paper utilizes high‐pressure as a regulatory tool in 1D R‐AMP(DMA)PbBr 5 , acquiring the following findings: i) The PLQY exceeds 85.6% (5 GPa) by optimizing the degree of ISB, which is currently the highest PLQY value in 1D chiral OILHPs. ii) The spin‐splitting energy increases from 2.0 meV (1 atm) to 29.8 meV (10 GPa), surpassing the room temperature thermal energy benchmark of 25.9 meV. High‐pressure structural characterization and second‐harmonic generation (SHG) reveal a sharp increase in ISB caused by the phase transition. Further TBSOC calculations indicate that the increased degeneracy of Pb‐6p orbitals breaks the weak SOC effect in 1D chiral OILHPs. This work not only overcomes the limitations of low PLQY and weak spin‐splitting in 1D chiral OILHPs through high‐pressure but also reveals the ISB origin of high PLQY and giant spin‐splitting, providing insights for the tunable design of high‐performance spintronic materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI