为了实现低功耗高精度电流检测,设计了一种基于运算放大器的具有对称结构的电阻采样结构,该结构不仅实现采样电压和采样电流的高线性度,而且能实现对微弱采样信号的可靠检测。设计的电路架构中包含5个电流-电压转换阶段,基于Hspice仿真...为了实现低功耗高精度电流检测,设计了一种基于运算放大器的具有对称结构的电阻采样结构,该结构不仅实现采样电压和采样电流的高线性度,而且能实现对微弱采样信号的可靠检测。设计的电路架构中包含5个电流-电压转换阶段,基于Hspice仿真,设计电路内部匹配电阻网络,以减小输入失调电压对采样的影响,拓展共模输入范围。该采样电路架构通过某0.35μm BCD工艺实现,版图面积仅为0.12 mm2,实测结果证明其工作电流小于1μA,采样电压检测精度高达5 m V,且具有高速响应能力。展开更多
Nanotechnology may well prove to be the 21st century's new wave of scientific knowledge that transforms people's lives. Nanotechnology research activities are booming around the globe. This article reviews the recen...Nanotechnology may well prove to be the 21st century's new wave of scientific knowledge that transforms people's lives. Nanotechnology research activities are booming around the globe. This article reviews the recent progresses made on nanoelectronic research in US and China, and introduces several novel hybrid solutions specifically useful for future computer technology. These exciting new directions will lead to many future inventions, and have a huge impact to research communities and industries.展开更多
文摘为了实现低功耗高精度电流检测,设计了一种基于运算放大器的具有对称结构的电阻采样结构,该结构不仅实现采样电压和采样电流的高线性度,而且能实现对微弱采样信号的可靠检测。设计的电路架构中包含5个电流-电压转换阶段,基于Hspice仿真,设计电路内部匹配电阻网络,以减小输入失调电压对采样的影响,拓展共模输入范围。该采样电路架构通过某0.35μm BCD工艺实现,版图面积仅为0.12 mm2,实测结果证明其工作电流小于1μA,采样电压检测精度高达5 m V,且具有高速响应能力。
文摘Nanotechnology may well prove to be the 21st century's new wave of scientific knowledge that transforms people's lives. Nanotechnology research activities are booming around the globe. This article reviews the recent progresses made on nanoelectronic research in US and China, and introduces several novel hybrid solutions specifically useful for future computer technology. These exciting new directions will lead to many future inventions, and have a huge impact to research communities and industries.