Compositionally graded III-nitride alloys: building blocks for efficient ultraviolet optoelectronics and power electronics

光电子学 数码产品 氮化镓 宽禁带半导体 材料科学 兴奋剂 紫外线 电力电子 氮化物 工程物理 带隙 半导体 纳米技术 物理 功率(物理) 电气工程 工程类 图层(电子) 量子力学
作者
Haochen Zhang,Chen Huang,Kang‐Il Song,Huabin Yu,Chong Xing,Danhao Wang,Zhongling Liu,Haiding Sun
出处
期刊:Reports on Progress in Physics [IOP Publishing]
卷期号:84 (4): 044401-044401 被引量:161
标识
DOI:10.1088/1361-6633/abde93
摘要

Wide bandgap aluminum gallium nitride (AlGaN) semiconductor alloys have established themselves as the key materials for building ultraviolet (UV) optoelectronic and power electronic devices. However, further improvements to device performance are lagging, largely due to the difficulties in precisely controlling carrier behavior, both carrier generation and carrier transport, within AlGaN-based devices. Fortunately, it has been discovered that instead of using AlGaN layers with fixed Al compositions, by grading the Al composition along the growth direction, it is possible to (1) generate high-density electrons and holes via polarization-induced doping; (2) manipulate carrier transport behavior via energy band modulation, also known as 'band engineering'. Consequently, such compositionally graded AlGaN alloys have attracted extensive interest as promising building blocks for efficient AlGaN-based UV light emitters and power electronic devices. In this review, we focus on the unique physical properties of graded AlGaN alloys and highlight the key roles that such graded structures play in device exploration. Firstly, we elaborate on the underlying mechanisms of efficient carrier generation and transport manipulation enabled by graded AlGaN alloys. Thereafter, we comprehensively summarize and discuss the recent progress in UV light emitters and power electronic devices incorporating graded AlGaN structures. Finally, we outline the prospects associated with the implementation of graded AlGaN alloys in the pursuit of high-performance optoelectronic and power electronic devices.
最长约 10秒,即可获得该文献文件

科研通智能强力驱动
Strongly Powered by AbleSci AI
科研通是完全免费的文献互助平台,具备全网最快的应助速度,最高的求助完成率。 对每一个文献求助,科研通都将尽心尽力,给求助人一个满意的交代。
实时播报
刚刚
刚刚
852应助清脆彤采纳,获得10
2秒前
3秒前
3秒前
夏夏发布了新的文献求助10
4秒前
4秒前
4秒前
4秒前
6秒前
6秒前
8秒前
敬老院1号应助kento采纳,获得200
9秒前
kkk7tt完成签到,获得积分10
10秒前
11秒前
12秒前
深情安青应助路痴采纳,获得10
13秒前
yumiao发布了新的文献求助10
14秒前
科研圣体发布了新的文献求助30
14秒前
bin完成签到 ,获得积分10
15秒前
16秒前
沂昀完成签到 ,获得积分10
17秒前
BY完成签到,获得积分10
17秒前
17秒前
珂珂完成签到 ,获得积分10
17秒前
辛勤的鼠标完成签到,获得积分10
19秒前
20秒前
郑匕完成签到,获得积分10
20秒前
20秒前
15987发布了新的文献求助10
21秒前
22秒前
vkey完成签到,获得积分10
22秒前
23秒前
23秒前
6682完成签到,获得积分10
23秒前
爱笑的紫霜完成签到 ,获得积分10
24秒前
Ivan完成签到,获得积分10
24秒前
郑匕发布了新的文献求助10
24秒前
26秒前
26秒前
高分求助中
(应助此贴封号)【重要!!请各用户(尤其是新用户)详细阅读】【科研通的精品贴汇总】 10000
Autoparametric Resonance in Mechanical Systems 1000
Cosmos as Art Object: Studies in Plato's Timaeus and Other Dialogues 600
Management and the Arts 510
Matrix Methods in Data Mining and Pattern Recognition Second Edition 510
基于锂离子电池正极材料回收的绿色溶剂开发及工程化应用研究 500
Auslegungsgeschichte 500
热门求助领域 (近24小时)
化学 材料科学 医学 生物 纳米技术 工程类 有机化学 化学工程 生物化学 计算机科学 内科学 物理 复合材料 催化作用 细胞生物学 无机化学 光电子学 物理化学 电极 基因
热门帖子
关注 科研通微信公众号,转发送积分 7643594
求助须知:如何正确求助?哪些是违规求助? 9216650
关于积分的说明 19772531
捐赠科研通 7208992
什么是DOI,文献DOI怎么找? 3276701
关于科研通互助平台的介绍 2438248
邀请新用户注册赠送积分活动 2274471