Nanogenerator applications: Self-powered systems

被引:0
|
作者
Pu X. [1 ]
Liu J. [1 ]
Li S. [1 ]
Wei D. [1 ]
机构
[1] Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing
关键词
self-charging systems; self-powered sensors; triboelectric nanogenerator;
D O I
10.1360/SST-2023-0082
中图分类号
学科分类号
摘要
Smart sensing is the foundation of the future digital and intelligent society. However, it is a great challenge to provide a continuous power supply to a large number of widely distributed sensing nodes of various types. Triboelectric nanogenerator (TENG) is a new type of mechanical energy harvesting technology emerging in recent years, which can effectively convert low-frequency, low-amplitude mechanical energy into electrical energy, enabling autonomous and self-driven mechanical signal sensing on the one hand; on the other hand, it can be integrated with energy storage and management to realize self-charging power supply systems. At the same time, TENG is suitable for a wide range of scenarios due to its versatility in material selection and structural design. Therefore, this paper systematically introduces the research progress of TENG applications in self-powered systems, mainly including typical research work in both self-driven sensors and self-charging systems, and finally analyzes and envisions the challenges of existing researches and potential future directions. © 2023 Chinese Academy of Sciences. All rights reserved.
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页码:967 / 988
页数:21
相关论文
共 113 条
  • [81] Bai Y, Xu L, He C, Et al., High-performance triboelectric nanogenerators for self-powered, in-situ and real-time water quality mapping, Nano Energy, 66, (2019)
  • [82] Wang X, Wang Z L, Yang Y., Hybridized nanogenerator for simultaneously scavenging mechanical and thermal energies by electromagnetic-triboelectric-thermoelectric effects, Nano Energy, 26, pp. 164-171, (2016)
  • [83] Zheng Y, Liu T, Wu J, Et al., Energy conversion analysis of multilayered triboelectric nanogenerators for synergistic rain and solar energy harvesting, Adv Mater, 34, (2022)
  • [84] Liu W, Wang Z, Wang G, Et al., Integrated charge excitation triboelectric nanogenerator, Nat Commun, 10, (2019)
  • [85] Xu L, Bu T Z, Yang X D, Et al., Ultrahigh charge density realized by charge pumping at ambient conditions for triboelectric nanogenerators, Nano Energy, 49, pp. 625-633, (2018)
  • [86] Pu X, Liu M, Li L, Et al., Efficient charging of Li-ion batteries with pulsed output current of triboelectric nanogenerators, Adv Sci, 3, (2016)
  • [87] Xia X, Wang H, Basset P, Et al., Inductor-free output multiplier for power promotion and management of triboelectric nanogenerators toward self-powered systems, ACS Appl Mater Interfaces, 12, pp. 5892-5900, (2020)
  • [88] Zhang H, Galayko D, Basset P., General analysis and optimization of a two-stage power management circuit for electrostatic/triboelectric nanogenerators, Nano Energy, 103, (2022)
  • [89] Zi Y, Wang J, Wang S, Et al., Effective energy storage from a triboelectric nanogenerator, Nat Commun, 7, (2016)
  • [90] Cheng G, Zheng H, Yang F, Et al., Managing and maximizing the output power of a triboelectric nanogenerator by controlled tip-electrode air-discharging and application for UV sensing, Nano Energy, 44, pp. 208-216, (2018)