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Article

A Storage Management System with Supercapacitors for Piezo–Thermoelectric Energy Harvesting Devices

by
George-Claudiu Zărnescu
1,
Lucian Pîslaru-Dănescu
1,*,
Marius Popa
2 and
Ioan Stamatin
3
1
Laboratory of Sensors/Actuators and Energy Harvesting, National Institute for Research and Development in Electrical Engineering ICPE-CA, 030138 Bucharest, Romania
2
Laboratory of Microprocessing and Rapid Prototyping, Department of Electromechanical Systems and Technologies, National Institute for Research and Development in Electrical Engineering ICPE-CA, 030138 Bucharest, Romania
3
3Nano-SAE Research Center, Faculty of Physics, University of Bucharest, 077125 Magurele, Romania
*
Author to whom correspondence should be addressed.
Micromachines 2026, 17(6), 723; https://doi.org/10.3390/mi17060723
Submission received: 8 May 2026 / Revised: 6 June 2026 / Accepted: 12 June 2026 / Published: 15 June 2026
(This article belongs to the Special Issue Piezoelectric Microdevices for Energy Harvesting)

Abstract

Two semiflexible piezoelectric composite plate structures were developed, incorporating 1 × 9 and 2 × 9 arrays of PZT elements mounted on brass discs and mechanically secured by pop rivets within a thin plastic foil spacer positioned between two copper-clad PCB layers. This configuration provides reliable electrical contact, adequate mechanical compliance, and efficient conversion of mechanical vibration energy into electrical energy. In addition, a multifunctional thermoelectric device was realized, consisting of four cubic modules arranged around a rectangular tube and enabling both handheld operation and coupling to hot or cold surfaces. Each cube is equipped with optimized finned heat sinks and integrates four thermoelectric elements on each face. Experimental results show that each cube generates approximately 6 mW, when handheld and with icy water injected into the central tube, demonstrating its suitability as a compact and versatile thermal energy harvester. Under low-light conditions, a solar panel is supplemented by this hybrid piezoelectric–thermoelectric energy harvesting system that combines the output of a piezoelectric composite plate with the dual outputs of a thermoelectric device using an electronically isolated summing block to ensure source decoupling. Energy storage and management are implemented using a capacitor buffer for the piezoelectric device, two voltage boosters for the thermoelectric outputs, and an automatic ultra-low-power pulse width modulation buck regulator for charging supercapacitors at 5 V.
Keywords: piezoelectric; thermoelectric; photovoltaic; average summing circuit; automatic voltage regulator; pulse width modulation (PWM); ultra-low power piezoelectric; thermoelectric; photovoltaic; average summing circuit; automatic voltage regulator; pulse width modulation (PWM); ultra-low power

Share and Cite

MDPI and ACS Style

Zărnescu, G.-C.; Pîslaru-Dănescu, L.; Popa, M.; Stamatin, I. A Storage Management System with Supercapacitors for Piezo–Thermoelectric Energy Harvesting Devices. Micromachines 2026, 17, 723. https://doi.org/10.3390/mi17060723

AMA Style

Zărnescu G-C, Pîslaru-Dănescu L, Popa M, Stamatin I. A Storage Management System with Supercapacitors for Piezo–Thermoelectric Energy Harvesting Devices. Micromachines. 2026; 17(6):723. https://doi.org/10.3390/mi17060723

Chicago/Turabian Style

Zărnescu, George-Claudiu, Lucian Pîslaru-Dănescu, Marius Popa, and Ioan Stamatin. 2026. "A Storage Management System with Supercapacitors for Piezo–Thermoelectric Energy Harvesting Devices" Micromachines 17, no. 6: 723. https://doi.org/10.3390/mi17060723

APA Style

Zărnescu, G.-C., Pîslaru-Dănescu, L., Popa, M., & Stamatin, I. (2026). A Storage Management System with Supercapacitors for Piezo–Thermoelectric Energy Harvesting Devices. Micromachines, 17(6), 723. https://doi.org/10.3390/mi17060723

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