Strong Differential Monovalent Anion Selectivity in Narrow Diameter Carbon Nanotube Porins
Author(s) -
Zhongwu Li,
YuHao Li,
YunChiao Yao,
Fikret Aydin,
Cheng Zhan,
Yunfei Chen,
Menachem Elimelech,
Tuan Anh Pham,
Aleksandr Noy
Publication year - 2020
Publication title -
acs nano
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.554
H-Index - 382
eISSN - 1936-086X
pISSN - 1936-0851
DOI - 10.1021/acsnano.0c02423
Subject(s) - selectivity , iodide , carbon nanotube , bromide , ion , halide , thiocyanate , inorganic chemistry , chemistry , chloride , membrane , nanotube , materials science , chemical engineering , analytical chemistry (journal) , photochemistry , nanotechnology , organic chemistry , catalysis , biochemistry , engineering
Inner pores of carbon nanotubes combine extremely fast water transport and ion selectivity that could potentially be useful for high-performance water desalination and separation applications. We used dye-quenching halide assays and stopped-flow spectrometry to determine intrinsic permeability of three small monovalent halide anions (chloride, bromide, iodide) and one pseudohalide anion (thiocyanate) through narrow 0.8 nm diameter carbon nanotube porins (CNTPs). These measurements revealed unexpectedly strong differential ion selectivity with permeabilities of different ions varying by up to 2 orders of magnitude. Removal of the negative charge from the nanotube entrance increased anion permeability by only a relatively small factor, indicating that electrostatic repulsion was not a major determinant of CNTP selectivity. First principle molecular dynamics simulations revealed that the origin of this strong differential ion selectivity is partial dehydration of anions upon entry into the narrow CNTP channels.
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