pH-temperature coupled regulation for promoted nanofluidic osmotic energy conversion

渗透力 化学 无量纲量 能量转换效率 工作(物理) 脱质子化 化学工程 唐南势 能量转换 化学物理 离子 活化能 化学能 热力学 电解质 正渗透 电极 物理化学 有机化学 工程类 反渗透 物理 生物化学
作者
Xu Zhang,Zhiguo Qu,Zetian Tang,Mazhar Iqbal
出处
期刊:Desalination [Elsevier BV]
卷期号:572: 117131-117131 被引量:16
标识
DOI:10.1016/j.desal.2023.117131
摘要

pH and temperature regulation effectively enhance the performance of nanofluidic osmotic energy conversion, but their combination is rarely studied numerically, causing unclear influences on selective ion transport and power generation . In this study, a model considering the coupled influence of pH and temperature on interfacial reactions is established for osmotic energy conversion. The increases in pH and temperature synergistically promote the interfacial deprotonation reaction and increase the surface charge density . Accordingly, the dimensionless number called the electrical double layer intensity is defined to describe the neutral deviation of the electrical double layer, which is obviously enhanced by raising the pH and temperature at low pH. Moreover, according to the pH value and ion selectivity , the energy conversion performance under temperature regulation is divided into the interface-dominant zone and the solution-dominant zone. The elevated temperature improves the osmotic energy conversion mainly by improving the interface property at a low pH but mainly by altering the solution properties at a high pH. Finally, fluid convection plays an important role at a relatively high pH value. This work provides a comprehensive understanding of the pH and temperature coupled regulation mechanisms and points out the design route for high output power. • A pH-temperature coupled regulation model is built for osmotic energy conversion. • The increases in pH and temperature synergistically promote deprotonation. • The performance is divided into interface-dominant and solution-dominant zone. • It is clarified that fluid convection plays an important role at a high pH value.
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