TY - JOUR
T1 - Precise Cation Recognition in Two-Dimensional Nanofluidic Channels of Clay Membranes Imparted from Intrinsic Selectivity of Clays
AU - Zhang, Tingting
AU - Bai, Haoyu
AU - Zhao, Yunliang
AU - Ren, Bo
AU - Wen, Tong
AU - Chen, Licai
AU - Song, Shaoxian
AU - Komarneni, Sridhar
N1 - Funding Information:
The financial support for this work from the National Natural Science Foundation of China (Nos. 51904215 and 51874220), Natural Science Foundation of Hubei Province of China (2021CFB554), and the Fundamental Research Funds for the Central Universities (WUT: 2020IVB016, 2021-zy-028) is gratefully acknowledged. H.B. greatly acknowledges the financial support provided by China Scholarship Council (CSC)-Imperial Scholarship (CSC No. 202106950021).
Publisher Copyright:
© 2022 American Chemical Society.
PY - 2022/3/22
Y1 - 2022/3/22
N2 - Various kinds of clays occur naturally and are accompanied by particular cations in their interlayer domains. Here we report the reassembled membranes with nanofluidic channel arrays by using the natural clays montmorillonite, mica, and vermiculite, which were imparted with the natural selectivity for realizing precise recognition and directional regulation of the naturally occurring interlayer cations. A typical surface-governed ionic transport behavior was observed in the clay nanofluidic channels. Through asymmetric structural modification, cationic current rectification was realized in montmorillonite channels that performed as a nanofluidic diode. Interestingly, in the mica nanofluidic channel, the K+ that was naturally occurring in the interlayer domain of mica showed a reciprocating motion and resulted in a periodically fluctuating current. Electrodialysis demonstrated that such a fluctuating current reflects a directional selectivity for K+, achieving at least a 6000 times permeation rate difference with Li+ ions. The specific selectivity for Li+/Mg2+ on vermiculite reached up to 856 times with similar cations by the current technique. As-obtained clay membranes possess application prospects in energy conversion, brine resource development, etc. Such a strategy can achieve the designed selectivity through systematic screening of the building blocks, thus imparting them with the inherent characteristics of natural clays, which provides an alternative solution to the present manufacture of selective membranes.
AB - Various kinds of clays occur naturally and are accompanied by particular cations in their interlayer domains. Here we report the reassembled membranes with nanofluidic channel arrays by using the natural clays montmorillonite, mica, and vermiculite, which were imparted with the natural selectivity for realizing precise recognition and directional regulation of the naturally occurring interlayer cations. A typical surface-governed ionic transport behavior was observed in the clay nanofluidic channels. Through asymmetric structural modification, cationic current rectification was realized in montmorillonite channels that performed as a nanofluidic diode. Interestingly, in the mica nanofluidic channel, the K+ that was naturally occurring in the interlayer domain of mica showed a reciprocating motion and resulted in a periodically fluctuating current. Electrodialysis demonstrated that such a fluctuating current reflects a directional selectivity for K+, achieving at least a 6000 times permeation rate difference with Li+ ions. The specific selectivity for Li+/Mg2+ on vermiculite reached up to 856 times with similar cations by the current technique. As-obtained clay membranes possess application prospects in energy conversion, brine resource development, etc. Such a strategy can achieve the designed selectivity through systematic screening of the building blocks, thus imparting them with the inherent characteristics of natural clays, which provides an alternative solution to the present manufacture of selective membranes.
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U2 - 10.1021/acsnano.2c00866
DO - 10.1021/acsnano.2c00866
M3 - Article
C2 - 35171573
AN - SCOPUS:85125389929
SN - 1936-0851
VL - 16
SP - 4930
EP - 4939
JO - ACS Nano
JF - ACS Nano
IS - 3
ER -