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黄铜矿半导体电学特性对其中等嗜热菌浸出行为的影响 被引量:1
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作者 张家明 张雁生 +4 位作者 张博 常可欣 李腾飞 王军 覃文庆 《矿冶工程》 CAS CSCD 北大核心 2018年第3期111-114,共4页
为了研究黄铜矿半导体电学特性对其生物浸出的影响机制,采用霍尔效应测试技术分析了3种不同来源黄铜矿的半导体电学特性,并在45℃、170 r/min、2%矿浆浓度条件下进行了中等嗜热混合菌浸出试验。结果表明,黄铜矿A的载流子浓度为-9.190... 为了研究黄铜矿半导体电学特性对其生物浸出的影响机制,采用霍尔效应测试技术分析了3种不同来源黄铜矿的半导体电学特性,并在45℃、170 r/min、2%矿浆浓度条件下进行了中等嗜热混合菌浸出试验。结果表明,黄铜矿A的载流子浓度为-9.190×10^(18)cm^(-3),绝对值明显高于黄铜矿B和C的载流子浓度(-3.065×10^(18)cm^(-3)和-2.183×10^(17)cm^(-3));黄铜矿A的电阻率为0.054 65Ω·cm,明显低于黄铜矿B和C的电阻率(0.146 9Ω·cm和0.930 6Ω·cm);黄铜矿的载流子浓度、电阻率与其铜浸出率存在明显联系,黄铜矿的载流子浓度越高、电阻率越小,铜的浸出速率就越高,浸出19 d后,3种黄铜矿纯矿物(A、B、C)的铜浸出率分别为66.1%,25.3%和21.4%;电化学试验结果表明,3种黄铜矿的氧化还原反应过程基本相同,但黄铜矿A的腐蚀电流密度明显高于另外两者。 展开更多
关键词 黄铜矿 半导体电学特性 中等嗜热浸矿菌 生物浸出 电化学
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Electronic structure and optical property of boron doped semiconducting graphene nanoribbons 被引量:2
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作者 CHEN AQing SHAO QingYi +1 位作者 WANG Li DENG Feng 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS 2011年第8期1438-1442,共5页
We present a system study on the electronic structure and optical property of boron doped semiconducting graphene nanoribbons using the density functional theory. Energy band structure, density of states, deformation ... We present a system study on the electronic structure and optical property of boron doped semiconducting graphene nanoribbons using the density functional theory. Energy band structure, density of states, deformation density, Mulliken popular and optical spectra are considered to show the special electronic structure of boron doped semiconducting graphene nanoribbons. The C-B bond form is discussed in detail. From our analysis it is concluded that the Fermi energy of boron doped semiconducting graphene nanoribbons gets lower than that of intrinsic semiconducting graphene nanoribbons. Our results also show that the boron doped semiconducting graphene nanoribbons behave as p-type semiconducting and that the absorption coefficient of boron doped armchair graphene nanoribbons is generally enhanced between 2.0 eV and 3.3 eV. Therefore, our results have a great significance in developing nano-material for fabricating the nano-photovoltaic devices. 展开更多
关键词 B-doped graphene nanoribbons electronic structure optical property density functional theory
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