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用于增强和选择性质子传输的石墨烯纳米孔的共价苯磺酸功能化

Covalent Benzenesulfonic Functionalization of a Graphene Nanopore for Enhanced and Selective Proton Transport.

作者信息

Calvani Dario, Kreupeling Bas, Sevink G J Agur, de Groot Huub J M, Schneider Grégory F, Buda Francesco

机构信息

Leiden Institute of Chemistry, Leiden University, P.O. Box 9502, 2300 RA Leiden, The Netherlands.

出版信息

J Phys Chem C Nanomater Interfaces. 2024 Feb 21;128(8):3514-3524. doi: 10.1021/acs.jpcc.3c07406. eCollection 2024 Feb 29.

Abstract

A fundamental understanding of proton transport through graphene nanopores, defects, and vacancies is essential for advancing two-dimensional proton exchange membranes (PEMs). This study employs ReaxFF molecular dynamics, metadynamics, and density functional theory to investigate the enhanced proton transport through a graphene nanopore. Covalently functionalizing the nanopore with a benzenesulfonic group yields consistent improvements in proton permeability, with a lower activation barrier (≈0.15 eV) and increased proton selectivity over sodium cations. The benzenesulfonic functionality acts as a dynamic proton shuttle, establishing a favorable hydrogen-bonding network and an efficient proton transport channel. The model reveals an optimal balance between proton permeability and selectivity, which is essential for effective proton exchange membranes. Notably, the benzenesulfonic-functionalized graphene nanopore system achieves a theoretically estimated proton diffusion coefficient comparable to or higher than the current state-of-the-art PEM, Nafion. Ergo, the benzenesulfonic functionalization of graphene nanopores, firmly holds promise for future graphene-based membrane development in energy conversion devices.

摘要

深入理解质子通过石墨烯纳米孔、缺陷和空位的传输,对于推动二维质子交换膜(PEM)的发展至关重要。本研究采用反应分子动力学、元动力学和密度泛函理论,研究通过石墨烯纳米孔增强质子传输的情况。用苯磺酸基团对纳米孔进行共价功能化,可使质子渗透率持续提高,具有较低的活化能垒(约0.15电子伏特),并且对钠离子的质子选择性增加。苯磺酸官能团充当动态质子穿梭体,建立了良好的氢键网络和高效的质子传输通道。该模型揭示了质子渗透率和选择性之间的最佳平衡,这对于有效的质子交换膜至关重要。值得注意的是,苯磺酸功能化的石墨烯纳米孔系统实现了理论估计的质子扩散系数,与当前最先进的质子交换膜Nafion相当或更高。因此,石墨烯纳米孔的苯磺酸功能化,为未来能量转换装置中基于石墨烯的膜开发,坚定地带来了希望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/457a/10910585/6d61a4f9c487/jp3c07406_0001.jpg

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