[1] |
Colombo C,Heiβ M,Grätzel M,et al. Gallium arsenide P-i-n radial structures for photovoltaic application[J]. Applied Physics Letters,2009,94(17):173108 doi: 10.1063/1.3125435
|
[2] |
BaligaB. J. Gallium nitride devices for power electronic applications[J]. Semiconductor Science and Technology,2013,28(7):074011 doi: 10.1088/0268-1242/28/7/074011
|
[3] |
Higashiwaki M,Sasaki K,Kuramata A,et al. Development of gallium oxide power devices[J]. Physica Status Solidi (a),2014,211(1):21−26 doi: 10.1002/pssa.201330197
|
[4] |
Zhou H,Zhang J C,Zhang C F,et al. A review of the most recent progresses of state-of-art galliumoxide power devices[J]. Journal of Semiconductors,2019,40(1):1−18
|
[5] |
Atulasimha J,FlatauA. B. A review of magnetostrictive iron–gallium alloys[J]. Smart Materials and Structures,2011,20(4):043001 doi: 10.1088/0964-1726/20/4/043001
|
[6] |
MoskalykRR. Gallium: The backbone of the electronics industry[J]. Minerals Engineering,2003,16(10):921−929 doi: 10.1016/j.mineng.2003.08.003
|
[7] |
Zhao Qinsheng. Gallium market, production, price and development[J]. Rare Metals and Cemented Carbides,2001,147(4):42−44 (赵秦生. 镓的市场、生产、价格与发展[J]. 稀有金属与硬质合金,2001,147(4):42−44(in chinese) doi: 10.3969/j.issn.1004-0536.2001.04.011
Zhao Qinsheng. Gallium market, production, price and development[J]. Rare Metals and Cemented Carbides, 2001, 147 (4):42 − 44 doi: 10.3969/j.issn.1004-0536.2001.04.011
|
[8] |
Li Changjiang. Production status and prospect of gallium metal in China[J]. Light metals,2013,32(8):13−15 (李长江. 中国金属镓生产现状及前景展望[J]. 轻金属,2013,32(8):13−15(in chinese)
Li Changjiang. Production status and prospect of gallium metal in China[J]. Light metals, 2013, 32 (8):13 − 15
|
[9] |
Tu Hailing,Ma Fei,Zhang Shirong,et al. Analysis of the current situation of China's new material industry and forward thinking[J]. Rare metals,2019,11(43):1121−1130 (屠海令,马飞,张世荣,等. 我国新材料产业现状分析与前瞻思考[J]. 稀有金属,2019,11(43):1121−1130(in chinese)
Tu Hailing, Ma Fei, Zhang Shirong, et al. Analysis of the current situation of China's new material industry and forward thinking[J]. Rare metals, 2019, 11 (43):1121 − 1130
|
[10] |
翟秀静,吕子剑. 镓冶金[J]. 北京:冶金工业出版社,2010:1−40
|
[11] |
张国成,黄文梅. 有色金属进展: 第五卷[J]. 长沙:中南大学出版社,2005:10−50
|
[12] |
周令治,陈少纯. 稀散金属提取冶金[J]. 北京:冶金工业出版社,2008:256−321
|
[13] |
庄睿. 氧化镓生长取向和形貌的控制研究[D]. 大连理工大学, 2014.
Zhuang Rui. Study on the control of growth orientation and morphology of gallium oxide[D]. Dalian University of Technology, 2014
|
[14] |
谢克强, 陈浩林, 马文会, 等. 一种氧化镓真空碳热还原制备金属镓的方法: CN111218558A[P]. 2020.
Xie Keqiang, Chen Haolin, Ma Wenhui, et al. A method for preparing gallium metal by vacuum carbothermal reduction of gallium oxide: CN111218558A [P]. 2020
|
[15] |
黄中省, 衷水平, 伍赠玲, 等. 用真空法从富镓渣中分离回收镓的方法[P]. 中国: CN103555958A, 2014.
Huang Zhongsheng, Zhongping, Wu Ziling, et al. Separation and recovery of gallium from gallium-rich slag by vacuum method [P] China: CN103555958A, 2014
|
[16] |
Cao Yichen. Thermodynamic analysis of vacuum carbothermal reduction of gallium in yellow phosphorus dust[J]. Xinjiang Nonferrous Metals,2013(S1):170−172 (曹毅臣. 黄磷电尘灰中镓真空碳热还原的热力学分析[J]. 新疆有色金属,2013(S1):170−172(in chinese) doi: 10.16206/j.cnki.65-1136/tg.2013.s1.119
Cao Yichen. Thermodynamic analysis of vacuum carbothermal reduction of gallium in yellow phosphorus dust[J]. Xinjiang Nonferrous Metals, 2013 (S1): 170 − 172 doi: 10.16206/j.cnki.65-1136/tg.2013.s1.119
|
[17] |
Cao Yichen. Experimental study on vacuum reduction and enrichment of gallium in yellow phosphorus dust[J]. Yunnan: Kunming University of Technology,2012:1−30 (曹毅臣. 黄磷电尘灰中镓真空还原富集实验研究[J]. 云南: 昆明理工大学,2012:1−30(in chinese)
Cao Yichen. Experimental study on vacuum reduction and enrichment of gallium in yellow phosphorus dust[J]. Yunnan: Kunming University of Technology, 2012: 1 − 30
|