膜
渗透
电动现象
材料科学
门控
离子
石墨烯
层状结构
化学物理
散射
纳米技术
分子动力学
动态光散射
晶体管
层流
化学工程
电压
分析化学(期刊)
电极
离子通道
合成膜
离子运输机
膜转运
化学
体积流量
作者
Aaditya Pendse,Arjun V. Yennemadi,Thomas Ferron,T. van Buuren,Armin VahidMohammadi,Teng Zhang,Yury Gogotsi,Martin Z. Bazant,Aleksandr Noy
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-12-19
卷期号:11 (51): eadx6361-eadx6361
标识
DOI:10.1126/sciadv.adx6361
摘要
Controlled spatial confinement and surface properties of lamellar 2D nanomaterial membranes could enhance many precision separation processes. Traditionally, researchers view channel dimensions, surface properties, and permeation rates of these membranes as intrinsic properties that cannot be modulated in operando. We report that gate voltage applied to the conducting laminar MXene membrane can modulate the permeation rate of ions and neutral solutes, as well as its effective size rejection. In operando wide-angle x-ray scattering measurements reveal that these changes are not driven by electrically induced variations in the d spacing of the MXene layers. Instead, experimental data and continuum electrokinetic modeling reveal that ion transport through the MXene channels is primarily affected by Donnan equilibrium at the membrane-solution interface. We also report a strong increase in the permeation rates through the membrane under a low-frequency ac voltage gating regime that we attribute to diffusioosmotic flow oscillations induced in the membrane. Overall, MXene "transistor" membranes provide a previously unidentified approach to dynamic control of molecular separations.
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