Selective Flocculation and H2O2-Free Oxidative Etching-Based Synthesis of Highly Monodisperse Ag Nanospheres for Uniform Quantum Dot Photoluminescence-Enhancing Plasmonic Cavity Applications

光致发光 等离子体子 分散性 纳米技术 纳米颗粒 蚀刻(微加工) 量子点 纳米结构 化学 量子产额 各向同性腐蚀 表面等离子共振 化学工程 材料科学 光电子学 光学 图层(电子) 有机化学 物理 工程类 荧光
作者
Yoonjae Jung,Yoonhee Kim,Yeonhee Lee,Jiwoong Son,Mihye Lim,Jwa‐Min Nam
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:146 (15): 10591-10598 被引量:7
标识
DOI:10.1021/jacs.4c00073
摘要

Ag nanoparticles have garnered significant attention for their excellent plasmonic properties and potential use as plasmonic cavities, primarily because of their intrinsically low ohmic losses and optical properties in the visible range. These are particularly crucial in systems involving quantum dots that absorb light at low wavelengths, where the need for a high threshold energy of interband transitions necessitates the incorporation of Ag nanostructures. However, the synthesis of Ag nanoparticles still encounters challenges in achieving structural uniformity and monodispersity, along with chemical stability, consequentially inducing inconsistent and poorly reliable optical responses. Here, we present a two-step approach for synthesizing highly uniform spherical Ag nanoparticles involving depletion-induced flocculation and Cu(II)-mediated oxidative etching. We found that the selective flocculation of multitwinned Ag nanocrystals significantly enhances the uniformity of the resulting Ag nanostructures, leaving behind only single-crystalline and single-twinned nanostructures. Subsequent oxidative etching, in which cupric ions are directly involved in the reaction, was designed based on Pourbaix diagrams to proceed following thermodynamically favorable states and circumvent the generation of reactive chemical species such as H

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