Please wait a minute...
材料导报  2022, Vol. 36 Issue (22): 22050023-6    https://doi.org/10.11896/cldb.22050023
  宇航材料 |
航天用氮化镓材料的研究进展
季启政1,2, 王一凡3, 胡小锋1, 李兴冀3, 杨剑群3, 刘尚合1,*
1 陆军工程大学石家庄校区电磁环境效应重点实验室,石家庄 050003
2 北京卫星环境工程研究所,北京 100094
3 哈尔滨工业大学材料科学与工程学院,哈尔滨 150001
Research Progress on Gallium Nitride Materials for Aerospace Applications
JI Qizheng1,2, WANG Yifan3, HU Xiaofeng1, LI Xingji3, YANG Jianqun3, LIU Shanghe1,*
1 National Key Laboratory on Electromagnetic Environment Effects, Army Engineering University Shijiazhuang Campus, Shijiazhuang 050003, China
2 Beijing Institute of Spacecraft Environment Engineering, Beijing 100094, China
3 School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, China
下载:  全 文 ( PDF ) ( 3299KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 氮化镓(GaN)材料由于具有优良的电学特性而受到了广泛的关注,有望在航天工程中获得重要应用。本文首先对GaN材料的特性进行了简要阐述,进而对基于GaN的高电子迁移率晶体管(AlGaN/GaN HEMTs)、空间太阳能电池、紫外探测器等的研究和应用现状进行了梳理及分析,最后从新型GaN器件的开发、空间环境适应性评价、GaN器件的加固等角度给出了航天器用GaN材料及器件的发展方向和建议。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
季启政
王一凡
胡小锋
李兴冀
杨剑群
刘尚合
关键词:  氮化镓  电学特性  空间环境  辐射效应  加固技术    
Abstract: Gallium nitride (GaN) materials have received extensive attention due to their excellent electrical properties and are expected to find important applications in aerospace engineering. In this paper, the characteristics of GaN materials are briefly expounded,and then the research status of GaN materials in high electron mobility transistors(AlGaN/GaN HEMTs), space solar cells, ultraviolet detectors (UV detectors) and other fields is reviewed and analyzed. Finally, the future development direction and suggestions are given from the perspectives of the development of new GaN devices, the evaluation of space environment adaptability, and the reinforcement of GaN devices.
Key words:  gallium nitride    electrical property    space environment    radiation effect    reinforcement technique
出版日期:  2022-11-25      发布日期:  2022-11-25
ZTFLH:  TB303  
基金资助: 国家自然科学基金(61904007)
通讯作者:  * liushh@cae.cn   
作者简介:  季启政,2006年7月于中国空间技术研究院获得工学硕士学位。现为中国人民解放军陆军工程大学石家庄校区博士研究生,在刘尚合院士的指导下进行研究,主要研究领域为空间电磁/静电效应与防护。
刘尚合,中国人民解放军陆军工程大学石家庄校区教授、博士研究生导师,中国工程院院士。国家高端智库“电磁场与电磁环境效应”专家组首席专家、电磁环境效应国家级重点实验室学术委员会主任。研究方向为静电与电磁防护、电磁环境效应。曾获国家科技进步一等奖1项、二等奖1项,全国科学大会奖1项,省部级科技进步一、二等奖11项,国家发明专利8项,出版专著3部,发表学术论文200余篇。
引用本文:    
季启政, 王一凡, 胡小锋, 李兴冀, 杨剑群, 刘尚合. 航天用氮化镓材料的研究进展[J]. 材料导报, 2022, 36(22): 22050023-6.
JI Qizheng, WANG Yifan, HU Xiaofeng, LI Xingji, YANG Jianqun, LIU Shanghe. Research Progress on Gallium Nitride Materials for Aerospace Applications. Materials Reports, 2022, 36(22): 22050023-6.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.22050023  或          http://www.mater-rep.com/CN/Y2022/V36/I22/22050023
1 Amano H, Sawaki N, Akasaki I, et al. Applied Physics Letters, 1986, 48(5), 353.
2 Ji Q Z, Liu J, Yang M, et al. Spacecraft Environment Engineering, 2022, 39(4), 436(in Chinese).
季启政, 刘峻, 杨铭, 等. 航天器环境工程, 2022, 39(4), 436.
3 Nakasha Y, Masuda S, Makiyama K, et al. In: IEEE Compound Semiconductor Integrated Circuit Symposium(CSICS). Monterey, CA, USA, 2010.
4 Micovic M K, Kurdoghlian A, Hashimoto P, et al. In: Electron Devices Meeting. Naples, Italy, 2006, pp. 1.
5 Jaeger J C, Delage S L, Dambrine G, et al. In: European Gallium Arsenide and Other Semiconductor Application Symposium. Paris, France, 2005, pp. 229.
6 Palacios T, Chakrabortry A, Rajan S,et al. IEEE Electron Device Letters, 2005, 26(11), 781.
7 Khan M A, Kuznia J N, Olson D T, et al. Applied Physics Letters, 1994, 65(1), 64.
8 Geens K, Li X, Zhao M, et al. In: 2019 IEEE 7th Workshop on Wide Bandgap Power Devices and Applications(WiPDA).Raleigh, NC,USA,2019 pp.292.
9 Wang Y H, Liang Y C, Samudra G S, et al. IEEE Electron Device Letters, 2015, 36(4), 381.
10 Huang S, Liu X, Wang X, et al. IEEE Transactions on Electron Devices, 2018, 65(1), 207.
11 Liu X, Chiu H C, Liu C H, et al. Journal of the Electron Devices Society, 2020, 8, 229.
12 Yu C J, Hu C W, Wu M C, et al. IEEE Electron Device Letters, 2020, 41(5),673.
13 Kim D S, Lee J H, Yeo S, et al. IEEE Transactions on Nuclear Science, 2018, 65(1), 579.
14 Bhuiyan M A, Zhou H, Chang S J, et al. IEEE Transactions on Nuclear Science, 2018, 65(1), 46.
15 Wu J, Walukiewicz W, Yu K M, et al. Applied Physics Letters, 2002, 80(25), 4741.
16 Naoi H, Kurouchi M, Muto D, et al. Physica Status Solidi(A),2006, 203(1), 93.
17 Yamamoto A, Islam M R, Kang T T, et al. Physica Status Solidi(C),2010, 7(7-8), 2097.
18 Mukhtarova A, Valdueza-Felip S, Durand C, et al. Physica Status Solidi(C), 2013, 10(3), 350.
19 Ould S H S, Adaine A, Fressengeas N. Materials Science in Semiconductor Processing, 2016, 41, 219.
20 Mahala P,Singh S,Pal S, et al. Applied Physics A,2016,639, 1.
21 Chun T Y, Wei C L, Cheng H Y, et al.IEEE Transactions on Electron Devices, 2015, 62(5),1473.
22 Mukhtarova A,Valdueza-Felip S, Redaelli L, et al. Applied Physics Letters,2016,108(16), 161907.
23 Chang J Y, Yen S H, Chang Y A, et al. IEEE Transactions on Electron Devices,2013,60(12), 4140.
24 Jani O, Honsberg C, Asghar A, et al. In: Proc 31stIEEE Photovoltaic Specialists Conference. Vista, FL,2005, pp.37.
25 Jani O,Ferguson I,Honsberg C,et al. Applied Physics Letters, 2007,91(13), 132117.
26 Singh R, Doppalapudi D, Moustakas T D, et al. Applied Physics Letters, 1997, 70(9), 1089.
27 Bae S Y, Jung B O,Lekhal K, et al. Japanese Journal of Applied Phy-sics, 2016, 55(5S), 05FGO3.
28 Adaine A, Hamady S, Fressengeas N. Superlattices & Microstructures, 2017, 107,267.
29 Yang C B, Wang X L, Xiao H L, et al. Physica Status Solidi A, 2007, 204(12), 4288.
30 Chen X, Matthews K, Hao D, et al. Physica Status Solidi A, 2008, 205(5), 1103.
31 Valdueza F S, Ajay A, Redaelli L, et al. Solar Energy Materials & Solar Cells,2017,160, 355.
32 Wu S, Cheng L, Wang Q. Superlattices & Microstructures, 2018, 119,9.
33 Monroy E, Calle F, Muioz E,et al. Applied Physics Letters,1999,74(22), 3401.
34 Li Y, Liu Y, Yang G, et al. Optics Express, 2021, 29(4), 5466.
35 Lee M L, Sheu J K, Su Y K. IEEE Electron Device Letter, 2004, 25(9), 593.
36 Ozbay E, Biyikli N, Kimukin I, et al. IEEE Journal of Selected Topics in Quantum Electronics, 2004, 10(4), 759.
37 You D, Xu J T, Tang Y W, et al. Chinese Journal of Semiconductors, 2006,27(10), 1861(in Chinese).
游达,许金通,汤英文,等.半导体学报,2006, 27(10), 1861.
38 Kalra A, Rathkanthiwar S, Muralidharan R, et al. IEEE Photonics Technology Letters, 2019, 31(15), 1237.
[1] 侯腾跃, 孙炎辉, 孙舒鹏, 肖瑛, 郑雁公, 王兢, 杜海英, 吴隽新. 机器学习在材料结构与性能预测中的应用综述[J]. 材料导报, 2022, 36(6): 20080205-12.
[2] 沈自才, 高鸿, 樊艳艳, 闫继娜, 于云, 刘学超, 王胭脂, 代巍. 航天材料飞行试验进展及发展方向[J]. 材料导报, 2022, 36(22): 22050022-8.
[3] 孙承月, 郭鑫鑫, 吴忧, 曹争利, 王豪, 琚丹丹, 王岩, 吴宜勇. 聚酰亚胺气凝胶材料的电子/紫外辐照效应及机理分析[J]. 材料导报, 2022, 36(22): 22040378-8.
[4] 杨传超, 徐鸿杰, 田国峰, 张静静, 高鸿, 卓航, 张梦颖, 战佳宇, 武德珍. 高强高模聚酰亚胺纤维的空间环境适应性研究及在航天领域的应用前景分析[J]. 材料导报, 2022, 36(22): 22040361-5.
[5] 李彬, 李娜, 黄一凡, 王强, 张晓东. 单粒子效应的激光模拟方法研究进展[J]. 材料导报, 2021, 35(21): 21195-21201.
[6] 汪延明, 周智斌, 廖富达, 何鹏, 周波, 苗振林, 季辉. 氮化镓基金属基板蓝光LED变温变电流性能[J]. 材料导报, 2020, 34(Z2): 48-51.
[7] 许君君, 黄金华, 盛伟, 王肇肇, 赵文凯, 李佳, 杨晔, 万冬云, 宋伟杰. 超薄金属透明导电膜及其应用研究进展[J]. 材料导报, 2019, 33(11): 1875-1881.
[1] Lanyan LIU,Jun SONG,Bowen CHENG,Wenchi XUE,Yunbo ZHENG. Research Progress in Preparation of Lignin-based Carbon Fiber[J]. Materials Reports, 2018, 32(3): 405 -411 .
[2] Haoqi HU,Cheng XU,Lijing YANG,Henghua ZHANG,Zhenlun SONG. Recent Advances in the Research of High-strength and High-conductivity CuCrZr Alloy[J]. Materials Reports, 2018, 32(3): 453 -460 .
[3] Yanchun ZHAO,Congyu XU,Xiaopeng YUAN,Jing HE,Shengzhong KOU,Chunyan LI,Zizhou YUAN. Research Status of Plasticity and Toughness of Bulk Metallic Glass[J]. Materials Reports, 2018, 32(3): 467 -472 .
[4] Xinxing ZHOU,Shaopeng WU,Xiao ZHANG,Quantao LIU,Song XU,Shuai WANG. Molecular-scale Design of Asphalt Materials[J]. Materials Reports, 2018, 32(3): 483 -495 .
[5] Yongtao TAN, Lingbin KONG, Long KANG, Fen RAN. Construction of Nano-Au@PANI Yolk-shell Hollow Structure Electrode Material and Its Electrochemical Performance[J]. Materials Reports, 2018, 32(1): 47 -50 .
[6] Ping ZHU,Guanghui DENG,Xudong SHAO. Review on Dispersion Methods of Carbon Nanotubes in Cement-based Composites[J]. Materials Reports, 2018, 32(1): 149 -158 .
[7] Fangyuan DONG,Shansuo ZHENG,Mingchen SONG,Yixin ZHANG,Jie ZHENG,Qing QIN. Research Progress of High Performance ConcreteⅠ:Raw Materials and Mix Proportion Design Method[J]. Materials Reports, 2018, 32(1): 159 -166 .
[8] Guiqin HOU,Yunkai LI,Xiaoyan WANG. Research Progress of Zinc Ferrite as Photocatalyst[J]. Materials Reports, 2018, 32(1): 51 -57 .
[9] Jianxiang DING,Zhengming SUN,Peigen ZHANG,Wubian TIAN,Yamei ZHANG. Current Research Status and Outlook of Ag-based Contact Materials[J]. Materials Reports, 2018, 32(1): 58 -66 .
[10] Jing WANG,Hongke LIU,Pingsheng LIU,Li LI. Advances in Hydrogel Nanocomposites with High Mechanical Strength[J]. Materials Reports, 2018, 32(1): 67 -75 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed