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PMN-PT relaxor ferroelectric single crystal flexible piezoelectric energy harvester

  • Xiaohui Gao
  • , Wenlong Wu
  • , Long Chen
  • , Kai Kang
  • , Xiaojun Yan
  • , Xiang Gao
  • , Saisai Tong
  • , Aoyang Luo
  • , Shuzheng Shi*
  • *Corresponding author for this work
  • Hebei University
  • Hebei Technology Innovation Center for Intelligent Production Line of Prefabricated Building Components
  • North University of China
  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

Chemical-based solid-state batteries are widely used as energy supply units in micro-electro-mechanical systems (MEMS). However, their drawbacks, including environmental pollution and frequent replacement requirements, limit their practical application. In contrast, mechanical energy available in the natural environment can be harvested and converted into electricity using piezoelectric materials, offering a promising alternative for powering electronic devices. In this paper, based on the fundamental principles of piezoelectric power generation and kinematic principle of chemical mechanical polishing (CMP), an electromechanical conversion model for flexible piezoelectric energy harvesters was established. And then the lead-based composite perovskite relaxor ferroelectric single crystal, lead magnesium niobate-lead titanate (PMN-PT), was used as the piezoelectric unit. The optimized geometric dimensions of the flexible energy harvester were determined through simulation analysis. Subsequently, the flexible preparation process was developed using chemical mechanical polishing (CMP) technology. Based on these optimizations, the flexible interdigital energy harvester was fabricated, and the corresponding test system was constructed. Furthermore, the output performance of the flexible piezoelectric energy harvester was investigated. The test results indicate that the forward connection yields an output voltage of 13.5 V and an output current of 10.2 μA, while the reverse connection produces an output voltage of 13.8 V and an output current of 10.6 μA. These results demonstrate the viability of powering self-powered sensor systems and wearable electronics.

Original languageEnglish
Article number117996
JournalSensors and Actuators A: Physical
Volume408
DOIs
StatePublished - 1 Oct 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 12 - Responsible Consumption and Production
    SDG 12 Responsible Consumption and Production

Keywords

  • CMP
  • Energy harvester
  • MEMS
  • PMN-PT
  • Piezoelectric effect

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