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来自石墨烯嵌入冠醚的高机械敏感性离子通道。

Highly mechanosensitive ion channels from graphene-embedded crown ethers.

作者信息

Fang A, Kroenlein K, Riccardi D, Smolyanitsky A

机构信息

Applied Chemicals and Materials Division, National Institute of Standards and Technology, Boulder, CO, USA.

出版信息

Nat Mater. 2019 Jan;18(1):76-81. doi: 10.1038/s41563-018-0220-4. Epub 2018 Nov 26.

Abstract

The ability to tune ionic permeation across nanoscale pores profoundly impacts diverse fields from nanofluidic computing to drug delivery. Here, we take advantage of complex formation between crown ethers and dissolved metal ions to demonstrate graphene-based ion channels highly sensitive to externally applied lattice strain. We perform extensive room-temperature molecular dynamics simulations of the effects of tensile lattice strain on ion permeation across graphene-embedded crown ether pores. Our findings suggest the first instance of solid-state ion channels with an exponential permeation sensitivity to strain, yielding an order of magnitude ion current increase for 2% of isotropic lattice strain. Significant permeation tuning is also shown to be achievable with anisotropic strains. Finally, we demonstrate strain-controllable ion sieving in salt mixtures. The observed high mechanosensitivity is shown to arise from strain-induced control over the competition between ion-crown and ion-solvent interactions, mediated by the atomic thinness of graphene.

摘要

调控纳米级孔隙中离子渗透的能力对从纳米流体计算到药物递送等多个领域都有着深远影响。在此,我们利用冠醚与溶解金属离子之间形成的配合物,展示了对外部施加的晶格应变高度敏感的基于石墨烯的离子通道。我们对拉伸晶格应变对穿过嵌入石墨烯的冠醚孔隙的离子渗透的影响进行了广泛的室温分子动力学模拟。我们的研究结果表明了固态离子通道首次出现对应变具有指数渗透敏感性的情况,对于2%的各向同性晶格应变,离子电流增加了一个数量级。还表明通过各向异性应变也可实现显著的渗透调控。最后,我们展示了盐混合物中应变可控的离子筛分。观察到的高机械敏感性源于石墨烯的原子级薄度介导的应变诱导对离子 - 冠醚和离子 - 溶剂相互作用之间竞争的控制。

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