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Ion and water transport in charge-modified graphene nanopores

机译:电荷修饰的石墨烯纳米孔中的离子和水传输

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Porous graphene has a high mechanical strength and an atomic-layer thickness that makes it a promising material for material separation and biomolecule sensing. Electrostatic interactions between charges in aqueous solutions are a type of strong long-range interaction that may greatly infl uence fl uid transport through nanopores. In this study, molecular dynamic simulations were conducted to investigate ion and water transport through 1.05-nm diameter monolayer graphene nanopores, with their edges charge-modified. Our results indicated that these nanopores are selective to counterions when they are charged. As the charge amount increases, the total ionic currents show an increase–decrease profile while the co-ion currents monotonically decrease. The co-ion rejection can reach 76.5%and 90.2%when the nanopores are negatively and positively charged, respectively. The Cl−ion current increases and reaches a plateau, and the Na+current decreases as the charge amount increases in systems in which Na+ions act as counterions. In addition, charge modification can enhance water transport through nanopores. This is mainly due to the ion selectivity of the nanopores. Notably, positive charges on the pore edges facilitate water transport much more strongly than negative charges.
机译:多孔石墨烯具有很高的机械强度和原子层厚度,使其成为用于材料分离和生物分子传感的有前途的材料。水溶液中电荷之间的静电相互作用是一种很强的远程相互作用,可能极大地影响流体通过纳米孔的传输。在这项研究中,进行了分子动力学模拟,以研究离子和水通过直径为1.05 nm的单层石墨烯纳米孔的迁移,并对其边缘进行了电荷修饰。我们的结果表明,当带电时,这些纳米孔对抗衡离子具有选择性。随着电荷量的增加,总离子电流显示出增加-减少的曲线,而共离子电流单调减少。当纳米孔带负电和正电时,共离子排斥率可分别达到76.5%和90.2%。在其中Na +离子作为抗衡离子的系统中,Cl-离子电流增加并达到平稳,并且Na +电流随着电荷量的增加而减少。另外,电荷修饰可以增强水通过纳米孔的传输。这主要是由于纳米孔的离子选择性。值得注意的是,孔边缘的正电荷比负电荷更有利于水的传输。

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