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广西师范大学学报(自然科学版) ›› 2026, Vol. 44 ›› Issue (5): 27-37.doi: 10.16088/j.issn.1001-6600.2025122802
田培一1,2,3,4, 蒋品群1,2,3,4*, 宋树祥1,2,3,4, 夏海英1,2,3,4, 蔡超波1,2,3,4
Tian Peiyi1,2,3,4, Jiang Pinqun1,2,3,4*, Song Shuxiang1,2,3,4, Xia Haiying1,2,3,4, Cai Chaobo1,2,3,4
摘要: 针对能量采集系统中微弱环境能量需高效升压到可用电压的需求,基于交叉耦合升压电荷泵的结构,本文提出一种采用多相位时钟控制的高效率、快速稳定升压电荷泵电路。该电路通过增加辅助MOS管、辅助电容,并采用六相不交叠时钟对电荷传输开关的导通时序进行精确控制,有效抑制电荷回流现象,降低能量损耗;同时结合动态体偏置技术,减小导通损耗并抑制亚阈值泄漏电流,从而进一步提升功率转换效率。基于180 nm CMOS工艺完成电路设计与仿真验证。仿真结果表明,在输入电压0.6 V条件下,单级电荷泵输出电压达1.13 V,最大功率转换效率达95.28%,输出纹波低至40 mV,输出电压在1 μs以内稳定,可广泛应用于物联网节点等低功耗能量采集系统。
中图分类号: TN432
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