Yao Lu, Li Qi, Pan Shangfa, Cheng Junmei, Liu Xueli
Key Laboratory of Rubber-Plastics, Ministry of Education, Qingdao University of Science and Technology, Qingdao, China.
Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, China.
Front Bioeng Biotechnol. 2022 Apr 21;10:901507. doi: 10.3389/fbioe.2022.901507. eCollection 2022.
Salinity-gradient directed osmotic energy between seawater and river water has been widely considered as a promising clean and renewable energy source, as there are numerous river estuaries on our planet. In the past few decades, reverse electrodialysis (RED) technique based on cation-selective membranes has been used as the key strategy to convert osmotic energy into electricity. From this aspect, developing high-efficiency anion-selective membranes will also have great potential for capturing osmotic energy, however, remains systematically unexplored. In nature, electric eels can produce electricity from ionic gradients by using their "sub-nanoscale" protein ion channels to transport ions selectively. Inspired by this, here we developed a UiO-66-NH metal-organic framework (MOF) based anion-selective composite membrane with sub-nanochannels, and achieved high-performance salinity-gradient power generation by mixing artificial seawater (0.5 M NaCl) and river water (0.01 M NaCl). The UiO-66-NH metal-organic framework based composite membranes can be easily and economically fabricated with dense structure and long-term working stability in saline, and its performance of power generation can also be adjusted by pH to enhance the surface charge density of the MOF sub-nanochannels. This study will inspire the exploitation of MOFs for investigating the sub-nanochannel directed high-performance salinity-gradient energy harvesting systems based on anion-selective ion transport.
由于地球上有众多河口,海水与河水之间的盐度梯度驱动渗透能被广泛认为是一种很有前景的清洁可再生能源。在过去几十年里,基于阳离子选择性膜的反向电渗析(RED)技术一直被用作将渗透能转化为电能的关键策略。从这方面来看,开发高效的阴离子选择性膜在捕获渗透能方面也将具有巨大潜力,然而,这一领域仍未得到系统探索。在自然界中,电鳗能够通过其“亚纳米级”蛋白质离子通道选择性地运输离子,从而从离子梯度中产生电能。受此启发,我们在此开发了一种具有亚纳米通道的基于UiO-66-NH金属有机框架(MOF)的阴离子选择性复合膜,并通过混合人工海水(0.5M NaCl)和河水(0.01M NaCl)实现了高性能的盐度梯度发电。基于UiO-66-NH金属有机框架的复合膜可以轻松且经济地制备,具有致密的结构以及在盐溶液中的长期工作稳定性,其发电性能还可以通过调节pH值来提高MOF亚纳米通道的表面电荷密度。这项研究将激发人们利用金属有机框架来研究基于阴离子选择性离子传输的亚纳米通道导向的高性能盐度梯度能量收集系统。