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首页> 外文期刊>Nano Energy >Evaporative electrical energy generation via diffusion-driven ion-electron-coupled transport in semiconducting nanoporous channel
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Evaporative electrical energy generation via diffusion-driven ion-electron-coupled transport in semiconducting nanoporous channel

机译:通过半导体纳米多孔通道中的扩散驱动离子电子耦合传输蒸发电能产生

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摘要

Water is one of the plentiful and ubiquitous resources on earth. Due to this characteristic, much efforts have been made to utilize various fluidic phenomena, such as fluidic transport and energy conversions. Recently, in conjunction with an advent of diverse nanomaterials, studies of these fluidic phenomena have been expanded to nanometric domains in those materials, possessing a high surface-to-volume ratio and unique solid-liquid interfacial effects. However, as an understanding of the nanofluidic effects therein was deficient, detailed studies of ionic transports and corresponding ion-solid interfacial interactions are still required. Herein, an evaporation-driven fluidic energy production in molybdenum disulfide (MoS2) and silica nanoparticle (SiO2 NP) based nanoporous channel was demonstrated by a translation of an evaporation-driven electro-diffusion of ions in the nanofluidic domain into a charge carrier effect in the semiconducting MoS2 layer via interfacial coulombic field drag effect. The revealing results showed that the semiconducting nanofluidic channels can be utilized to induce an ion-charge carrier-coupled effect beyond conventional electro-kinetic effects in insulating conduits. Our finding could provide understandings of water-nanomaterials interfacial interactions for developing advanced nanofluidic energy conversion systems.
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