Liquid-liquid triboelectric nanogenerator based on the immiscible interface of an aqueous two-phase system

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作者
Ye Lu
Longlong Jiang
Yang Yu
Dehua Wang
Wentao Sun
Yang Liu
Jing Yu
Jun Zhang
Kai Wang
Han Hu
Xiao Wang
Qingming Ma
Xiaoxiong Wang
机构
[1] Qingdao University,College of Physics
[2] Qingdao University,School of Pharmacy
[3] University-Industry Joint Center for Ocean Observation and Broadband Communication,Collaborative Innovation Center for Eco
[4] College of Physics,Textiles of Shandong Province, and State Key Laboratory of Bio
[5] Qingdao University,Fibers and Eco
[6] Weihai Innovation Research Institute of Qingdao University,Textiles
[7] Qingdao University,School of Health and Life Sciences
[8] University of Health and Rehabilitation Sciences,Microsystem and Terahertz Research Center
[9] China Academy of Engineering Physics,Institute of Electronic Engineering
[10] China Academy of Engineering Physics,School of Physics and Electronics
[11] Shandong Normal University,School of Electrical Engineering
[12] Qingdao University,State Key Laboratory of Heavy Oil Processing, College of Chemical Engineering
[13] China University of Petroleum (East China),School of Mathematics and Statistics
[14] Qingdao University,undefined
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摘要
Solid nanogenerators often have limited charge transfer due to their low contact area. Liquid–liquid nanogenerators can transfer a charge better than the solid–solid and solid–liquid counterparts. However, the precise manipulation of the liquid morphology remains a challenge because of the fluidity limits of the liquid. In this work, using the surface tension of a droplet to fix its shape, a liquid-liquid triboelectric nanogenerator in Contact-Separation mode is designed using an immiscible aqueous-aqueous interface, achieving a contact surface charge transfer of 129 nC for a single droplet. The configuration is proven to be applicable in humid environments, and the two-phase materials have good biocompatibility and can be used as an effective drug carrier. Therefore, this nanogenerator is useful for designing future implantable devices. Meanwhile, this design also establishes the foundation of aqueous electronics, and additional applications can be achieved using this route.
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