Comediation of voltage gating and ion charge in MXene membrane for controllable and selective monovalent cation separation.

Wang, Xu; Zhang, Haiguang; Wei, Gaoliang; Xing, Jiajian; Chen, Shuo; Quan, Xie · Sci Adv · 2024

basic_science · Level V

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Abstract

Artificial ion channels with controllable mono/monovalent cation separation fulfill important roles in biomedicine, ion separation, and energy conversion. However, it remains a daunting challenge to develop an artificial ion channel similar to biological ion channels due to ion-ion competitive transport and lack of ion-gating ability of channels. Here, we report a conductive MXene membrane with polydopamine-confined angstrom-scale channels and propose a voltage gating and ion charge comediation strategy to concurrently achieve gated and selective mono/monovalent cation separation. The membrane shows a highly switchable "on-off" ratio of ∼9.9 for K<sup>+</sup> transport and an excellent K<sup>+</sup>/Li<sup>+</sup> selectivity of 40.9, outperforming the ion selectivity of reported membranes with electrical gating (typically 1.5 to 6). Theoretical simulations reveal that the introduced high-charge cations such as Mg<sup>2+</sup> enable the preferential distribution of target K<sup>+</sup> over competing Li<sup>+</sup> at the channel entrance, and the surface potential reduces the ionic transport energy barrier for allowing K<sup>+</sup> to pass quickly through the channel.