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Ultrafast Metal-Free Microsupercapacitor Arrays Directly Store Instantaneous High-Voltage Electricity from Mechanical Energy Harvesters
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Ultrafast Metal-Free Microsupercapacitor Arrays Directly Store Instantaneous High-Voltage Electricity from Mechanical Energy Harvesters

Shiqian Chen, Zheng Li, Po-Han Huang, Virginia Ruiz, Yingchun Su, Yujie Fu, Yolanda Alesanco, B. Gunnar Malm, Frank NiklausJiantong Li
Advanced Science, 卷.11(22), 2400697
06/2024
PMID: 38502870

摘要

droplet-based electricity generators full printing microsupercapacitor arrays on-paper electronics PEDOT:PSS Medicine (miscellaneous) Chemical Engineering (all) Materials Science (all) Biochemistry Genetics and Molecular Biology (miscellaneous) Engineering (all) Physics and Astronomy (all)
Harvesting renewable mechanical energy is envisioned as a promising and sustainable way for power generation. Many recent mechanical energy harvesters are able to produce instantaneous (pulsed) electricity with a high peak voltage of over 100 V. However, directly storing such irregular high-voltage pulse electricity remains a great challenge. The use of extra power management components can boost storage efficiency but increase system complexity. Here utilizing the conducting polymer PEDOT:PSS, high-rate metal-free micro-supercapacitor (MSC) arrays are successfully fabricated for direct high-efficiency storage of high-voltage pulse electricity. Within an area of 2.4 × 3.4 cm <sup>2</sup> on various paper substrates, large-scale MSC arrays (comprising up to 100 cells) can be printed to deliver a working voltage window of 160 V at an ultrahigh scan rate up to 30 V s <sup>−1</sup> . The ultrahigh rate capability enables the MSC arrays to quickly capture and efficiently store the high-voltage (≈150 V) pulse electricity produced by a droplet-based electricity generator at a high efficiency of 62%, significantly higher than that (<2%) of the batteries or capacitors demonstrated in the literature. Moreover, the compact and metal-free features make these MSC arrays excellent candidates for sustainable high-performance energy storage in self-charging power systems.

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https://doi.org/10.1002/advs.202400697檢視
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