Analysis and Experiment of Self‐Powered, Pulse‐Based Energy Harvester Using 400 V FEP‐Based Segmented Triboelectric Nanogenerators and 98.2% Tracking Efficient Power Management IC for Multi‐Functional IoT Applications

Author:

Chandrarathna Seneke Chamith1ORCID,Graham Sontyana Adonijah2ORCID,Ali Muhammad1ORCID,Ranaweera Arambewaththe Lekamalage Aruna Kumara3ORCID,Karunarathne Migara Lakshitha4ORCID,Yu Jae Su2ORCID,Lee Jong‐Wook1ORCID

Affiliation:

1. Information and Communication System‐on‐chip (SoC) Research Center Department of Electronics and Information Convergence Engineering Kyung Hee University 1732 Deogyeong‐daero, Giheung Yongin Gyeonggi 17104 Republic of Korea

2. Institute for Wearable Convergence Electronics Department of Electronics and Information Convergence Engineering Kyung Hee University 1732 Deogyeong‐daero, Giheung Yongin Gyeonggi 17104 Republic of Korea

3. Electronics Design and Innovation Center Department of Physics and Electronics University of Kelaniya Kandy Road, Dalugama Kelaniya 11600 Sri Lanka

4. Faculty of Engineering Sri Lanka Technological Campus (SLTC) Main Campus, Ingiriya Road Padukka 10500 Sri Lanka

Abstract

AbstractA self‐powered system for the Internet of Things (IoT) is demonstrated for efficient energy harvesting of naturally available mechanical energy. In this system, new contact‐separation mode triboelectric nanogenerators (TENGs), based on fluorinated ethylene propylene, are investigated using the segmented multi‐TENG configuration to reduce the effect of parasitic capacitance. The TENG extraction is optimized using a unit step excitation involved with the Dawson function to achieve a high voltage (400 V) and a high current (26.6 µA). To fully extract the power of the TENGs, the power management integrated circuit (PMIC) specially designed for adaptively controlled, high‐voltage (HV) maximum power point tracking (MPPT) is proposed. The PMIC implemented in a bipolar CMOS‐DMOS 180 nm process can handle a wide input range (5–70 V) by consuming 420 nW. The MPPT control allows a wide range of impedance matching from 10 to 300 MΩ, achieving a tracking efficiency of up to 98.2%. The end‐to‐end efficiency of 88% demonstrates state‐of‐the‐art performance. To supply a higher instantaneous power than that available from the TENGs, a duty‐cycling technique is successfully demonstrated. The proposed energy harvesting system provides a promising approach to realizing sustainable and autonomous energy sources for various IoT applications.

Funder

National Research Foundation of Korea

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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