材料科学
反向电渗析
纳米孔
氮化硅
化学工程
电渗析
渗透力
光电子学
氮化物
硅
膜
电解质
盐度
阳极
作者
Jian Ma,Qingyu Zeng,Lijian Zhan,Jingwen Mo,Yan Zhang,Ni Zhang
出处
期刊:NANO
[World Scientific]
日期:2020-11-01
卷期号:15 (11): 2050148-2050148
被引量:2
标识
DOI:10.1142/s1793292020501489
摘要
Solid-state nanopores have shown great potential in investigating salinity gradient energy generation as a renewable power generator. In this work, various diameter silicon nitride (Si 3 N[Formula: see text] nanopores were fabricated to investigate the power generation between two potassium chloride solutions with different concentration gradient ratios by reverse electrodialysis. The maximal estimated power density of a Si 3 N 4 nanopore measured experimentally can be high to 16[Formula: see text]649Wm[Formula: see text]. To compare with the single Si 3 N 4 nanopore, multiple nanopores array has also been investigated. The equivalent circuit model of multiple Si 3 N 4 nanopores array generator is quantitatively constructed by massive reproducible experimental data and theoretical derivation. For nanopore array, the osmotic current basically keep a linear growth with the number of the nanopores at every concentration ratio. While, the osmotic voltage is basically independent on the number of nanopore. The power generation circuit of the nanopore array can be regarded as a parallel circuit of multiple nanopores. Power generation from concentration gradients in Si 3 N 4 nanopores could be widely used in a variety of applications like ultra-low power devices and micro-nano electromechanical systems.
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