材料科学
高能
液晶
比例(比率)
化学工程
纳米技术
能量转换
能量(信号处理)
光电子学
工程物理
热力学
物理
量子力学
数学
统计
工程类
作者
Jun‐Chao Liu,Chao Li,Pan Jia,Junran Hao,Longcheng Gao,Jingxia Wang,Lei Jiang
标识
DOI:10.1002/adma.202313695
摘要
Abstract The osmotic energy, an abundant renewable energy source, can be directly converted to electricity by nanofluidic devices with ion‐selective membranes. 2D nanochannels constructed by nanosheets possess abundant lateral interfacial ion‐exchange sites and exhibit great superiority in nanofluidic devices. However, the most accessible orientation of the 2D nanochannels is parallel to the membrane surface, undoubtedly resulting in the conductivity loss. Herein, first vertically aligned 2D subnanochannel arrays self‐assembled by a smectic liquid crystal (LC) network that exhibit high‐performance osmotic energy conversion are demonstrated. The 2D subnanochannel arrays are fabricated by in situ photopolymerization of monomers in the LC phase. The as‐prepared membrane exhibits excellent water‐resistance and mechanical strength. The 2D subnanochannels with excellent cation selectivity and conductivity show high‐performance osmotic energy conversion. The power density reaches up to about 22.5 W m −2 with NaCl solution under a 50‐fold concentration gradient, which is among with ultrahigh power density. This membrane design concept provides promising applications in osmotic energy conversion.
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