为解决脉冲功率装置中D-dot电容分压器在低电压下校准高电压下使用,不可避免地产生分压比线性度问题,提出此测试方法。基于D-dot电容分压器和RC积分器电压测试系统的分压原理,利用PSPice仿真软件建立冲击高压下的等效电路模型,将冲击高...为解决脉冲功率装置中D-dot电容分压器在低电压下校准高电压下使用,不可避免地产生分压比线性度问题,提出此测试方法。基于D-dot电容分压器和RC积分器电压测试系统的分压原理,利用PSPice仿真软件建立冲击高压下的等效电路模型,将冲击高压试验装置中经过上级溯源的标准电容分压器作为100 k V以下D-dot线性度和分压比的量传标准。实验结果证明:该方法准确有效,能够解决100 k V以下D-dot分压器分压比线性度的测试问题。展开更多
Formation of Mn2+-doped ZnSe quantum dots(Mn:ZnSe d-dots)with both branched and nearly spherical shapes has been studied.Structure analysis indicates that the Mn2+dopants were localized in the core of a branched nanoc...Formation of Mn2+-doped ZnSe quantum dots(Mn:ZnSe d-dots)with both branched and nearly spherical shapes has been studied.Structure analysis indicates that the Mn2+dopants were localized in the core of a branched nanocrystal.The growth of branched d-dots,rather than spherical ones,was achieved by simply varying the concentration of two organic additives,fatty acids,and fatty amines.The photoluminescence properties of the branched nanocrystals were explored and compared with those of the nearly spherical particles.展开更多
文摘为解决脉冲功率装置中D-dot电容分压器在低电压下校准高电压下使用,不可避免地产生分压比线性度问题,提出此测试方法。基于D-dot电容分压器和RC积分器电压测试系统的分压原理,利用PSPice仿真软件建立冲击高压下的等效电路模型,将冲击高压试验装置中经过上级溯源的标准电容分压器作为100 k V以下D-dot线性度和分压比的量传标准。实验结果证明:该方法准确有效,能够解决100 k V以下D-dot分压器分压比线性度的测试问题。
基金by the National Science Foundation and the National Institute of Health。
文摘Formation of Mn2+-doped ZnSe quantum dots(Mn:ZnSe d-dots)with both branched and nearly spherical shapes has been studied.Structure analysis indicates that the Mn2+dopants were localized in the core of a branched nanocrystal.The growth of branched d-dots,rather than spherical ones,was achieved by simply varying the concentration of two organic additives,fatty acids,and fatty amines.The photoluminescence properties of the branched nanocrystals were explored and compared with those of the nearly spherical particles.