渗透力
纳米孔
可再生能源
膜
能量转换
离子运输机
发电
反向电渗析
功率(物理)
生化工程
材料科学
工艺工程
环境科学
纳米技术
化学
正渗透
工程类
电气工程
物理
生物化学
热力学
反渗透
量子力学
作者
Van-Phung Mai,Wei‐Hao Huang,Ruey‐Jen Yang
标识
DOI:10.1021/acsestengg.1c00309
摘要
Renewable energy development is one of the most promising approaches for tackling global warming, fulfilling the ever-increasing energy demand, and protecting the environment. Among the various renewable energy sources available nowadays, salinity gradient energy, also known as blue energy, is regarded as a particularly attractive solution for the generation of sustainable clean energy and has thus attracted great attention in recent years. In a typical blue energy conversion process, power generation is attained through the transport of ions through nanopassages, such as nanopores in membranes. This review commences by exploring the many opportunities and challenges involved in performing ion transport through the nanopassages provided by one-, two-, and three-dimensional membranes. Novel strategies for enhancing the ion transport and upscaling the size of the membrane for increasing the performance of harvesting the blue energy in such systems are then introduced and discussed. Especially, we discuss the mechanism of how to enhance ion transport through nanopores. The review concludes with a brief perspective on the future development of the salinity gradient power generation field.
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