| Literature DB >> 30773010 |
Jian Ma1, Kun Li1, Zhongwu Li1, Yinghua Qiu1, Wei Si1, Yanyan Ge1, Jingjie Sha1, Lei Liu1, Xiao Xie2, Hong Yi1, Zhonghua Ni1, Deyu Li3, Yunfei Chen1.
Abstract
Ion transport through nanopores is a process of fundamental significance in nature and in engineering practice. Over the past decade, it has been found that the ion conductivity in nanopores could be drastically enhanced, and different mechanisms have been proposed to explain this observation. To date, most reported studies have been carried out with relatively dilute electrolytes, while ion transport in nanopores under high electrolyte concentrations (>1 M) has been rarely explored. Through systematic experimental and atomistic simulation studies with NaCl solutions, here we show that at high electrolyte concentrations, ion mobility in small nanopores could be significantly reduced from the corresponding bulk value. Subsequent molecular dynamics studies indicate that in addition to the low mobility of surface-bound ions in the Stern layer, enhanced pairing and collisions between partially dehydrated ions of opposite charges also make important contributions to the reduced ion mobility. Furthermore, we show that the extent of mobility reduction depends on the association constant between cations and anions in different electrolytes with a more drastic reduction for a larger association constant.Entities:
Year: 2019 PMID: 30773010 PMCID: PMC6675019 DOI: 10.1021/jacs.8b08488
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419