首站-论文投稿智能助手
典型文献
High-power microwaves response characteristics of silicon and GaAs solar cells
文献摘要:
The high-power microwave(HPM)effect heats solar cells,which is an important component of a satellite.This cre-ates a serious reliability problem and affects the normal operation of a satellite.In this paper,the different HPM response charac-teristics of two kinds of solar cells are comparatively researched by simulation.The results show that there are similarities and dif-ferences in hot spot distribution and damage mechanisms between both kinds of solar cell,which are related to the amp-litude of HPM.In addition,the duty cycle of repetition frequency contributes more to the temperature accumulation of the sol-ar cells than the carrier frequency.These results will help future research of damage assessment technology,reliability enhance-ment and the selection of materials for solar cells.
文献关键词:
作者姓名:
Xiangrui Meng;Changchun Chai;Fuxing Lit;Yi Sun;Yintang Yang
作者机构:
Wide Bandgap Semiconductor Technology Disciplines State Key Laboratory,Xidian University,Xi'an 710071,China
引用格式:
[1]Xiangrui Meng;Changchun Chai;Fuxing Lit;Yi Sun;Yintang Yang-.High-power microwaves response characteristics of silicon and GaAs solar cells)[J].半导体学报(英文版),2022(11):51-57
A类:
B类:
High,power,microwaves,response,characteristics,silicon,GaAs,solar,cells,high,HPM,effect,heats,which,important,component,satellite,This,cre,ates,serious,reliability,problem,affects,normal,operation,In,this,paper,different,two,kinds,are,comparatively,researched,by,simulation,results,show,that,there,similarities,ferences,hot,spot,distribution,damage,mechanisms,between,both,related,amp,litude,addition,duty,cycle,repetition,frequency,contributes,more,temperature,accumulation,than,carrier,These,will,help,future,assessment,technology,enhance,selection,materials
AB值:
0.625116
相似文献
Highly transmitted silver nanowires-SWCNTs conductive flexible film by nested density structure and aluminum-doped zinc oxide capping layer for flexible amorphous silicon solar cells
Shunliang Gao;Xiaohui Zhao;Qi Fu;Tianchi Zhang;Jun Zhu;Fuhua Hou;Jian Ni;Chengjun Zhu;Tiantian Li;Yanlai Wang;Vignesh Murugadoss;Gaber A.M.Mersal;Mohamed M.Ibrahim;Zeinhom M.El-Bahy;Mina Huang;Zhanhu Guo-The Key Laboratory of Semiconductor Photovoltaic Technology at Universities of Inner Mongolia Autonomous Region,College of Physical Science and Technology,Inner Mongolia University,Hohhot 010021,China;Department of Electronic Science and Technology,School of Electronic Information and Optical Engineering,Nankai University,Tianjin 300350,China;Advanced Materials Division,Engineered Multifunctional Composites(EMC)Nanotech LLC,Knoxville,TN 37934,United States;Integrated Composites Laboratory(ICL),Department of Chemical and Bimolecular Engineering,University of Tennessee,Knoxville,TN 37996,United States;Department of Chemistry,College of Science,Taif University,P.O.Box 11099,Taif 21944,Saudi Arabia;Department of Chemistry,Faculty of Science,Al-Azhar University,Nasr City 11884,Cairo,Egypt;College of Materials Science and Engineering,Taiyuan University of Science and Technology,Taiyuan 030024,China
Data-driven design of high-performance MASnxPb1-xI3 perovskite materials by machine learning and experimental realization
Xia Cai;Fengcai Liu;Anran Yu;Jiajun Qin;Mohammad Hatamvand;Irfan Ahmed;Jiayan Luo;Yiming Zhang;Hao Zhang;Yiqiang Zhan-School of Information Science and Technology,Fudan University,Shanghai 200433,China;College of Information,Mechanical and Electrical Engineering,Shanghai Normal University,Shanghai 200234,China;Center of Micro-Nano System,Fudan University,Shanghai 200433,China;Department of Physics,Chemistry and Biology,Link?ping University,Link?ping SE-58183,Sweden;Key Laboratory of Micro and Nano Photonic Structures and Department of Optical Science and Engineering,Fudan University,Shanghai 200433,China;Yiwu Research Institute of Fudan University,Chengbei Road,Yiwu City,Zhejiang 322000,China
Data-driven design of high-performance MASnxPb1-xI3 perovskite materials by machine learning and experimental realization
Xia Cai;Fengcai Liu;Anran Yu;Jiajun Qin;Mohammad Hatamvand;Irfan Ahmed;Jiayan Luo;Yiming Zhang;Hao Zhang;Yiqiang Zhan-School of Information Science and Technology,Fudan University,Shanghai 200433,China;College of Information,Mechanical and Electrical Engineering,Shanghai Normal University,Shanghai 200234,China;Center of Micro-Nano System,Fudan University,Shanghai 200433,China;Department of Physics,Chemistry and Biology,Link?ping University,Link?ping SE-58183,Sweden;Key Laboratory of Micro and Nano Photonic Structures and Department of Optical Science and Engineering,Fudan University,Shanghai 200433,China;Yiwu Research Institute of Fudan University,Chengbei Road,Yiwu City,Zhejiang 322000,China
Manipulate energy transport via fluorinated spacers towards record-efficiency 2D Dion-Jacobson CsPbI3 solar cells
Yutian Lei;Zhenhua Li;Haoxu Wang;Qian Wang;Guoqiang Peng;Youkui Xu;Haihua Zhang;Gang Wang;Liming Ding;Zhiwen Jin-School of Physical Science and Technology&Key Laboratory for Magnetism and Magnetic Materials of the Ministry of Education,Lanzhou University,Lanzhou 730000,China;School of Physical Science and Technology&Lanzhou Center for Theoretical Physics&Key Laboratory of Theoretical Physics of Gansu Province,Lanzhou University,Lanzhou 730000,China;Delft University of Technology,Photovoltaic Materials and Devices Group,Delft 2628CD,the Netherlands;Institute of Molecular Plus,Tianjin University,Tianjin 300072,China;Department of Microelectronic Science and Engineering,School of Physical Science and Technology,Ningbo University,Ningbo 315211,China;Key Laboratory of Nanosystem and Hierarchical Fabrication,National Center for Nanoscience and Technology,Beijing 100190,China
机标中图分类号,由域田数据科技根据网络公开资料自动分析生成,仅供学习研究参考。