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InGaN/GaN多量子阱LED纳米线中的载流子局域化效应:发光量子效率的提高和“负”热激活能

Carrier Localization Effects in InGaN/GaN Multiple-Quantum-Wells LED Nanowires: Luminescence Quantum Efficiency Improvement and "Negative" Thermal Activation Energy.

作者信息

Bao Wei, Su Zhicheng, Zheng Changcheng, Ning Jiqiang, Xu Shijie

机构信息

Department of Physics, Shenzhen Institute of Research and Innovation (SIRI), and HKU-CAS Joint Laboratory on New Materials, The University of Hong Kong, Pokfulam Road, Hong Kong, China.

Mathematics and Physics Centre, Department of Mathematical Sciences, Xi'an Jiaotong-Liverpool University, Suzhou 215123, China.

出版信息

Sci Rep. 2016 Sep 30;6:34545. doi: 10.1038/srep34545.

Abstract

Two-dimensional InGaN/GaN multiple-quantum-wells (MQW) LED structure was nanotextured into quasi-one-dimensional nanowires (NWs) with different average diameters with a combination approach of Ni nanoislands as mask + dry etching. Such nanotexturing bring out several appealing effects including deeper localization of carriers and significant improvement in quantum efficiency (e.g., from 4.76% of the planar MQW structure to 12.5% of the 160 nm MQW NWs) of light emission in the whole interested temperature range from 4 K to 300 K. With the aid of localized-state ensemble (LSE) luminescence model, the photoluminescence spectra of the samples are quantitatively interpreted in the entire temperature range. In terms of distinctive temperature dependence of photoluminescence from these samples, a concept of "negative" thermal activation energy is tentatively proposed for the MQW NWs samples. These findings could lead to a deeper insight into the physical nature of localization and luminescence mechanism of excitons in InGaN/GaN nanowires.

摘要

采用镍纳米岛作为掩膜+干法刻蚀的组合方法,将二维InGaN/GaN多量子阱(MQW)发光二极管结构纳米纹理化为具有不同平均直径的准一维纳米线(NWs)。这种纳米纹理化带来了几种引人注目的效果,包括载流子的更深局域化以及在4 K至300 K的整个感兴趣温度范围内发光量子效率的显著提高(例如,从平面MQW结构的4.76%提高到160 nm MQW NWs的12.5%)。借助局域态系综(LSE)发光模型,对样品的光致发光光谱在整个温度范围内进行了定量解释。根据这些样品光致发光独特的温度依赖性,初步为MQW NWs样品提出了“负”热激活能的概念。这些发现可能会更深入地了解InGaN/GaN纳米线中激子的局域化物理本质和发光机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9299/5043280/502a6ae2f7ff/srep34545-f1.jpg

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