Electrokinetic Energy Conversion in Conical Nanochannels: Regulation Effect due to Conicity

Fang Qian, Deng Huang, Wenyao Zhang, Wenbo Li, Qiuwan Wang, Cunlu Zhao
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Abstract

Electrokinetic energy conversion being a promising clean energy production technology utilizes the electric double layer (EDL) in a nanochannel to convert hydrodynamic energy to electrical power. The previous research mainly focuses on the electrokinetic energy conversion in straight nanochannels. In this work, we perform a systematic investigation of electrokinetic energy conversion in a conical nanochannel. For this purpose, a multiphysical model consisting of the Planck-Nernst-Poisson equation and Navier-Stokes equation was formulated and solved numerically. Particularly, we discover various regulation effects in the electrokinetic energy conversion in conical nanochannels that the energy conversion characteristics (streaming potential, streaming current and I-V characteristics) are different for a forward pressure difference and a backward pressure difference of the same magnitude. These regulation effects are found to be caused by the conicity of channel. Then the effects of the channel conicity, applied pressure difference and the surface charge density on the performance of electrokinetic energy conversion are discussed in details. It is generally shown that the regulation effects are enhanced by increasing the conicity, pressure difference and surface charge density. The conclusions from this work can serve as important reference and guidelines for the design and operation of electrokinetic energy conversion devices.
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锥形纳米通道中的电动能量转换:由于锥形的调节效应
电动能转换是一种很有前途的清洁能源生产技术,它利用纳米通道中的双电层(EDL)将水动力转化为电能。以往的研究主要集中在直线型纳米通道中的电动能转换。在这项工作中,我们对锥形纳米通道中的电动能转换进行了系统的研究。为此,建立了由Planck-Nernst-Poisson方程和Navier-Stokes方程组成的多物理模型,并对其进行了数值求解。特别是,我们发现了锥形纳米通道中电动能量转换的各种调节效应,在相同大小的正向压差和反向压差下,能量转换特性(流势、流电流和I-V特性)是不同的。这些调节作用是由沟道的锥形度引起的。然后详细讨论了通道锥度、外加压差和表面电荷密度对电动能转换性能的影响。一般表明,增大锥度、压差和表面电荷密度可以增强调节效果。所得结论可为电动能量转换装置的设计和运行提供重要的参考和指导。
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