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A core-shell fiber moisture-driven electric generator enabled by synergetic complex coacervation and built-in potentialopen access

Authors
Zan GuangtaoJiang Wei김호연Zhao KaiyingLi ShengyouLee KyuhoJang Jihye김관호Shin EunaeKim WoojoongOh Jin WooKim YeonjiPark Jong WoongKim TaebinLee SeonjuOh Ji HyeShin JowonKim Hyeong JunPark Cheolmin
Issue Date
Nov-2024
Publisher
Nature Publishing Group
Citation
Nature Communications, v.15, no.1
Journal Title
Nature Communications
Volume
15
Number
1
URI
https://yscholarhub.yonsei.ac.kr/handle/2021.sw.yonsei/23321
DOI
10.1038/s41467-024-54442-4
ISSN
2041-1723
Abstract
Moisture-driven electricity generators (MEGs) have been extensively researched; however, high-performance flexible variants have seldom been demonstrated. Here we present a novel complex coacervation with built-in potential strategy for developing a high-performance uniaxial MEG, featuring a core of poly(3,4-ethylenedioxythiophene) (PEDOT) with a built-in charge potential and a gel shell composed of poly(diallyldimethylammonium chloride) (PDDA) and sodium alginate (NaAlg) coacervate. The complex coacervation of two oppositely charged polyelectrolytes produces extra mobile carriers and free volume in the device; meanwhile, the PEDOT core's surface charge significantly accelerates carrier diffusion. Consequently, the uniaxial fiber-based MEG demonstrates breakthrough performance, achieving an output voltage of up to 0.8 V, a maximum current density of 1.05 mA/cm2, and a power density of 184 mu W/cm2 at 20% relative humidity. Moreover, the mechanical robustness is ensured for the PEDOT nanoribbon substrate without performance degradation even after 100,000 folding cycles, making it suitable for self-powered human interactive sensor and synapse. Notably, we have constructed the inaugural MEG-synapse self-powered device, with a fiber-based MEG successfully operating a synaptic memristor, thereby emulating autonomous human synapses linked with fibrous neurons. Overall, this work pioneers innovative design strategies and application scenarios for high-performance MEGs.,The authors present a core-shell fiber moisture-driven electric generator by a synergetic complex coacervation and built-in potential strategy, enabling self-powered human interactive sensors and synaptic devices.,
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공과대학 (공과대학 신소재공학과)
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