Ag+-Induced Shape and Composition Evolution of Covellite CuS Nanoplatelets To Produce Plate–Satellite and Biconcave−Particle Heterostructures

柯石英 异质结 硫化铜 纳米棒 柯肯德尔效应 材料科学 纳米晶 三元运算 硫化物 化学工程 无机化学 粒子(生态学) 结晶学 纳米技术 化学 冶金 工程类 地质学 海洋学 程序设计语言 光电子学 计算机科学 黄铜矿
作者
Yang Liu,Deqiang Yin,Mark T. Swihart
出处
期刊:Chemistry of Materials [American Chemical Society]
卷期号:30 (21): 8089-8098 被引量:15
标识
DOI:10.1021/acs.chemmater.8b04272
摘要

The creation of novel metal sulfide nanostructures and heterostructures by incorporating heterocations into template copper sulfide nanocrystals (NCs) is an important and intriguing area of colloidal synthesis. In contrast with typical incorporation using divalent, trivalent, and tetravalent cations, the mechanism for incorporation of monovalent Ag+ into copper sulfide NCs is less clear. In this work, we prepared new types of heterostructures by incorporating Ag+ into covellite CuS nanoplatelets (NPls). The incorporation process depended strongly on the initial Ag+ concentration. When a relatively small amount of Ag+ was provided (0.1 mmol, roughly 20% of the Cu present in the template NPls), CuS–Ag2S plate–satellite heterostructures were produced by cation exchange (CE) reactions occurring at the corners of the template hexagonal NPls. In contrast, biconcave–particle Ag2S–Ag heterostructures were obtained via the nanoscale Kirkendall effect when starting with 0.5 mmol of Ag+. Our observations indicate that the Ag+ incorporation process is also template-dependent. A redox process involving disulfide bonds in CuS is essential for producing Ag2S domains, rather than forming a ternary Ag–Cu–S phase, which was the result when djurleite Cu1.94S NPls were treated with Ag+. These results and mechanistic discussions not only provide a better understanding of a complex cation incorporation and crystal phase transition process but also provide a means to design new copper sulfide-based heterostructures.
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