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掺铟氧化锌纳米晶的能带隙可调谐性增强。

Augmented band gap tunability in indium-doped zinc sulfide nanocrystals.

机构信息

School of Science, RMIT University, Melbourne, VIC 3000, Australia.

出版信息

Nanoscale. 2019 Feb 14;11(7):3154-3163. doi: 10.1039/c8nr08830f.

Abstract

Doping semiconductor nanocrystals is a powerful tool to impart new and beneficial optical and electrical properties to the host nanocrystals. Doping has been used to improve the performances of nanocrystal-based devices in applications as diverse as optics, magnetism, electronics, catalysis and sensing. In this work we present a low temperature colloidal synthesis of zinc sulfide (ZnS) nanocrystals doped with indium. Through optimization of the reaction parameters and the doping level, quantum confined (∼2 nm in size) crystalline colloids with highly tunable optical properties are achieved. Using a suite of characterization techniques including X-ray diffraction, high-resolution transmission electron microscopy, optical spectroscopies (absorption, emission, and Raman), compositional analyses and first principles simulations, we investigate the structural, morphological and optical properties of the synthesized nanocrystals. Indium dopants are found to heavily influence the band gap of ZnS. This strategy in addition to traditional methods of size control enables the synthesis of nanocrystals with finely tunable band gaps between ∼3.8 eV-4.3 eV. These doped ZnS nanocrystals are fabricated into selective UV thin-film absorbers and discriminatory proof-of-concept UVA-UVB/C photodetectors.

摘要

掺杂半导体纳米晶是赋予宿主纳米晶新的和有益的光学和电学性质的有力工具。掺杂已被用于提高基于纳米晶体的器件在光学、磁性、电子学、催化和传感等各种应用中的性能。在这项工作中,我们提出了一种低温胶体合成掺铟硫化锌(ZnS)纳米晶的方法。通过优化反应参数和掺杂水平,实现了具有高度可调光学性质的量子限制(尺寸约为 2nm)的结晶胶体。我们使用一系列的表征技术,包括 X 射线衍射、高分辨率透射电子显微镜、光学光谱学(吸收、发射和拉曼)、成分分析和第一性原理模拟,研究了合成纳米晶的结构、形态和光学性质。铟掺杂剂被发现严重影响 ZnS 的能带隙。除了传统的尺寸控制方法外,这种策略还能够合成具有在 3.8eV-4.3eV 之间可调谐的精细能带隙的纳米晶。这些掺杂的 ZnS 纳米晶被制成选择性的紫外薄膜吸收体和用于 UVA-UVB/C 光电探测器的有区别的概念验证。

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