Ultra‐High Peak Power Generation for Rotational Triboelectric Nanogenerator via Simple Charge Control and Boosted Discharge Design

Author:

Heo Deokjae1,Son Jin‐ho1,Hur Jiwoong1,Yong Hyungseok2,Cha Kyunghwan1,Hwang Patrick T.J.3,Koo Bonwook4,Gwak Yunki5,Jin Youngho6,Kim Dongseob7,Hong Jinkee2,Lee Sangmin1

Affiliation:

1. School of Mechanical Engineering Chung‐ang University 84, Heukseok‐ro, Dongjak‐gu Seoul 06974 Republic of Korea

2. School of Chemical & Biomolecular Engineering Yonsei University 50 Yonsei‐ro, Seodaemun‐gu Seoul 03722 Republic of Korea

3. The Cardiovascular Institute and the Department of Biomedical Engineering in the 21 Rowan‐Virtua School of Translational Biomedical Engineering & Sciences Glassboro 22 NJ, 08028 USA

4. Major in Wood Science and Technology Kyungpook National University 80 Daehakro Daegu 41566 Republic of Korea

5. Missile Research Institute Agency for Defense Development Daejeon 34186 Republic of Korea

6. Department of Advanced Materials Engineering Chung‐ang University Anseong 17546 Republic of Korea

7. Safety System R&D Group Korea Institute of Industrial Technology (KITECH) 57, Yangho‐gil Yeongcheon‐si Gyeongsangbuk‐do 38822 Republic of Korea

Abstract

AbstractCurrently, enhancing the output power of rotational‐mode triboelectric nanogenerators (TENGs) using various complicated systems is a contentious issue; however, this is a challenging process owing to the inherent characteristics of TENGs, namely, low output currents as opposed to high voltages. Thus, this study proposes a simple and innovative strategy for ultra‐high output peak power generation of TENGs called a self‐boosted rotational electrostatic‐discharge TENG (SRE‐TENG). The SRE‐TENG mechanism is unique as it is based on charge control and boosted discharge design, thereby achieving a remarkable peak power of 1103.8 W, peak power density of 140.6 Kw m−2, low optimum resistance of 100 Ω, and broad peak power generation range of 10 Ω to 1 GΩ. Diligent measurements and analyses of the peak and root‐mean‐square voltage and current outputs of the SRE‐TENG are conducted for various design variables and circuit configurations. The proposed SRE‐TENG mechanism is validated using experimental and multiphysics simulation results. The high‐output performance of the SRE‐TENG is demonstrated via the lighting of 3,000 LEDs and a 60‐W lamp array, continuous driving of a commercial sensor array, and hydrogen/oxygen generation via water electrolysis.

Funder

National Research Foundation of Korea

Defense Acquisition Program Administration

Publisher

Wiley

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