Journal of Guangxi Normal University(Natural Science Edition) ›› 2026, Vol. 44 ›› Issue (5): 27-37.doi: 10.16088/j.issn.1001-6600.2025122802

• Physical and Electronic Engineering • Previous Articles     Next Articles

High-efficiency and fast-stabilizing boost charge pump controlled by multi-phase clock

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   

  1. 1. Guangxi Key Laboratory of Brain-Inspired Computing and Intelligent Chips (Guangxi Normal University), Guilin Guangxi 541004, China;
    2. Guangxi Universities Key Laboratory of Integrated Circuits and Microsystems (Guangxi Normal University), Guilin Guangxi 541004, China;
    3. Guangxi Universities Engineering Research Center for Optoelectronic Information Technology (Guangxi Normal University), Guilin Guangxi 541004, China;
    4. School of Electronics and Information Engineering/School of Integrated Circuits, Guangxi Normal University, Guilin Guangxi 541004, China
  • Received:2025-12-28 Revised:2026-02-20 Online:2026-09-05 Published:2026-07-24

Abstract: In response to the demand for efficiently boosting weak environmental energy to a usable voltage in energy harvesting systems, based on the structure of cross-coupled boost charge pumps, a high-efficiency, fast and stable boost charge pump circuit controlled by multi-phase clocks is proposed. Firstly, this circuit precisely controls the conduction timing of the charge transfer switch by adding auxiliary MOS transistors, auxiliary capacitors and using a six-phase non-overlapping clock, effectively suppressing the phenomenon of charge back flow and reducing energy loss. Then, by integrating dynamic body bias technology, conduction losses are reduced and sub-threshold leakage currents are suppressed, thereby further enhancing power conversion efficiency. Finally, the circuit is designed and verified through a simulation based on the 180 nm CMOS process. The simulation results show that under the input voltage of 0.6 V, the output voltage of the single-stage charge pump can reach 1.13 V, the maximum power conversion efficiency can reach 95.28%, the output ripple is as low as 40 mV, and the output voltage is stable within 1 μs.Therefore, it can be widely applied in low-power energy harvesting systems such as internet of things nodes.

Key words: charge pump, auxiliary MOS transistor, auxiliary capacitor, dynamic body bias, six-phase non-overlapping clock

CLC Number:  TN432
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