化学
卤化物
聚合
共价键
带隙
产量(工程)
聚合物
金属卤化物
异质结
高分子化学
化学物理
金属
联轴节(管道)
光化学
纳米技术
电子结构
混合材料
化学工程
工作(物理)
类型(生物学)
作者
Xiaofan Xu,Peijie Zhang,Han Jiang,Yawen Li,Jie Liu,Yunfan Fei,Jinlong Zhu,Haiyan Zheng,Zewei Quan
摘要
Pressure is a powerful tool to modulate hybrid metal halides (HMHs), but its effects are often reversed upon decompression. Here, using the unsaturated m-aminophenylacetylene (m-APA) cation, we report pressure-induced polymerization (PIP) as a strategy for irreversible band-structure engineering in three heterostructures as HMH crystals: (m-APA)2Pb3I8, (m-APA)2PbBr4, and (m-APA)PbCl3. Distinct polymerization pathways yield novel ambient-stable phases with narrowed band gaps and reconfigured band alignments. The resulting polymeric cations exhibit varied sp2/sp3-C ratios, which significantly tune the electronic coupling across organic-inorganic interfaces. Specifically, P-(m-APA)2Pb3I8 retains type I alignment with gap narrowing driven by chemical pressure on the inorganic sublattice, while P-(m-APA)2PbBr4 undergoes a type I to type II transition, and P-(m-APA)PbCl3 transforms from type II to reversed-type I via organic band-edge reconstruction. This work demonstrates PIP as a novel and general approach to permanently tailor the electronic structures of HMHs, enabling functional design through the controlled covalent transformation of organic cations under high pressure.
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