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通过固定纳米棒阵列中的缺陷来填补氮化镓基发光二极管绿色缺口的新方法。

A Novel Way to Fill Green Gap of GaN-Based LEDs by Pinning Defects in Nanorod Array.

作者信息

Zhan Jinglin, Chen Zhizhong, Deng Chuhan, Jiao Fei, Xi Xin, Chen Yiyong, Nie Jingxin, Pan Zuojian, Zhang Haodong, Dong Boyan, Kang Xiangning, Wang Qi, Tong Yuzhen, Zhang Guoyi, Shen Bo

机构信息

State Key Laboratory for Artificial Microstructure and Mesoscopic Physics, School of Physics, Peking University, Beijing 100871, China.

Inspur (Beijing) Electronic Information Industry Co., Ltd., Beijing 100085, China.

出版信息

Nanomaterials (Basel). 2022 Nov 3;12(21):3880. doi: 10.3390/nano12213880.

Abstract

Nanorod array and planar green-emission InGaN/GaN multi-quantum well (MQW) LEDs were fabricated by lithography, nano-imprinting, and top-down etching technology. The defect-pinning effect of the nanostructure was found for the first time. The ratio of the bright regions to the global area in the panchromatic CL images of green MQW samples increased from 30% to about 90% after nano-fabrication. The overall luminous performance significantly improved. Throughout temperature-dependent photoluminescence (TDPL) and time-resolved PL (TRPL) measurements, the migration and recombination of carriers in the MQWs of green LEDs were analyzed. It was proved that nanostructures can effectively prevent carriers from being captured by surrounding nonradiative recombination centers. The overall PL integral intensity can be enhanced to above 18 times. A much lower carrier lifetime (decreasing from 91.4 to 40.2 ns) and a higher internal quantum efficiency (IQE) (increasing from 16.9% to 40.7%) were achieved. Some disputes on the defect influence were also discussed and clarified.

摘要

通过光刻、纳米压印和自上而下的蚀刻技术制备了纳米棒阵列和平面绿色发光氮化铟镓/氮化镓多量子阱(MQW)发光二极管。首次发现了纳米结构的缺陷钉扎效应。纳米制造后,绿色MQW样品的全色阴极发光(CL)图像中亮区与全局面积的比例从30%增加到约90%。整体发光性能显著提高。通过温度相关光致发光(TDPL)和时间分辨光致发光(TRPL)测量,分析了绿色发光二极管MQW中载流子的迁移和复合。结果表明,纳米结构可以有效地防止载流子被周围的非辐射复合中心捕获。整体光致发光积分强度可提高到18倍以上。实现了更低的载流子寿命(从91.4纳秒降至40.2纳秒)和更高的内量子效率(IQE)(从16.9%提高到40.7%)。还讨论并澄清了一些关于缺陷影响的争议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/420b/9654749/9a2584d95848/nanomaterials-12-03880-g001.jpg

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