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Surface passivation enabled-structural engineering of I-III-VI <sub/>2</sub> nanocrystal photocatalysts

DOI:10.1039/D0TA01501F 期刊:Journal of Materials Chemistry A 出版年份:2020 更新时间:2025-09-23 15:21:01
摘要: Cation exchange has evolved into a powerful tactic for synthesis of semiconductor nanocrystals (NCs) that are not readily accessible otherwise. Here we have investigated the In3+-for-Cu+ cation exchange in the dodecahedral-shaped Cu7S4 NCs and found that surface passivation, either caused by excess guest cations or ligand molecules, can be exploited to engineer the structural properties of the NCs. By monitoring the parallel reactions carried out under systematically varied conditions, together with the positron annihilation spectroscopy investigation, we have demonstrated that the key element accounting for the observed surface passivation is associated with the copper vacant sites on the surface of Cu7S4 NCs. The reduction in In3+/Cu+ ratio and the presence of strong-binding ligands could enhance the density of surface copper vacancies and boost cation exchange reaction, which therefore alters the competition between the in-di?usion of In3+ and out-di?usion of Cu+ ions. Such capability to control the inter-di?usion balance in cation exchange (and the accompanying Kirkendall e?ect) enables the creation of a series of CuInS2 (and Cu7S4@CuInS2) NCs with various exotic structures, which show di?erent photocatalytic abilities in singlet oxygen generation. This study can not only add more structural complexity and diversity to the semiconductor NCs achievable by cation exchange, but also presents an important guideline for establishing a unifying mechanistic understanding of the reaction kinetics in cation exchange process.
作者: Yuemei Li,Jia Liu,Xingzhong Cao,Xiaodong Wan,Rongrong Pan,Bing Bai,Hongzhi Wang,Jiatao Zhang
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Investigating the In3+-for-Cu+ cation exchange in the dodecahedral-shaped Cu7S4 NCs to engineer the structural properties of the NCs through surface passivation, either caused by excess guest cations or ligand molecules, and to understand the mechanism behind the observed surface passivation.

The study demonstrates that surface passivation can be harnessed as a viable tool in cation exchange to tailor the structure of semiconductor NCs. The balance in rates of in-di?usion of In3+ and out-di?usion of Cu+ during cation exchange can be manipulated by varying the cation ratios and the use of proper ligands, enabling the creation of NCs with various exotic structures and enhanced photocatalytic performance.

The study is focused on the In3+-for-Cu+ cation exchange in Cu7S4 NCs and the effect of surface passivation on this process. The findings may not be directly applicable to other cation exchange systems or NCs with different compositions and structures.

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