光致发光
卤化物
材料科学
兴奋剂
光电子学
蓝移
离子键合
金属
金属卤化物
自发辐射
八面体
激子
纳米技术
宽禁带半导体
化学物理
斯托克斯位移
异质结
发光
光子上转换
高压
作者
Jingwen Guo,Lin Wei,Shuo Wang,Yaru Wang,Ruixin Li,Shourui Li,Kai Wang,Qian Li
标识
DOI:10.1002/lpor.202503074
摘要
ABSTRACT 2D Cd‐based metal halides combine exceptional air stability with reduced toxicity, rendering them promising alternatives to Pb‐based perovskites for optoelectronic applications. Nevertheless, achieving highly efficient and tunable multicolor photoluminescence (PL) in these materials remains a formidable challenge. Herein, BDACdBr 4 (BDA = 1,4‐butanediamine) exhibits intense, near‐full‐visible PL through the synergistic application of high‐pressure tuning and ionic substitution. Upon compression, pronounced octahedral distortions, intralayer deformation, and interlayer contraction are induced, collectively restricting excited‐state relaxation, strengthening electron‐phonon coupling, and lowering reorganization energy. These effects substantially promote radiative recombination of self‐trapped excitons (STEs) while suppressing nonradiative decay, leading to intense PL emission under pressure. Simultaneously, the widened bandgap, reduced Stokes shift, and reduced degeneracy of STE states contribute to an obvious blueshift in emission, ranging from natural white to blue. Furthermore, partial ionic substitution with Pb 2+ and Sb 3+ enables pressure‐tunable emission spanning from deep‐blue to orange‐red. This dual approach, combining pressure and doping engineering, provides a versatile strategy for designing efficient, multicolor emissive metal halides, highlighting their potential for next‐generation pressure sensors and solid‐state lighting technologies.
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