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光刻分割的孤立碳纳米管中充水的直径依赖性

Diameter Dependence of Water Filling in Lithographically Segmented Isolated Carbon Nanotubes.

作者信息

Faucher Samuel, Kuehne Matthias, Koman Volodymyr B, Northrup Natalie, Kozawa Daichi, Yuan Zhe, Li Sylvia Xin, Zeng Yuwen, Ichihara Takeo, Misra Rahul Prasanna, Aluru Narayana, Blankschtein Daniel, Strano Michael S

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

Department of Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.

出版信息

ACS Nano. 2021 Feb 23;15(2):2778-2790. doi: 10.1021/acsnano.0c08634. Epub 2021 Jan 29.

Abstract

Although the structure and properties of water under conditions of extreme confinement are fundamentally important for a variety of applications, they remain poorly understood, especially for dimensions less than 2 nm. This problem is confounded by the difficulty in controlling surface roughness and dimensionality in fabricated nanochannels, contributing to a dearth of experimental platforms capable of carrying out the necessary precision measurements. In this work, we utilize an experimental platform based on the interior of lithographically segmented, isolated single-walled carbon nanotubes to study water under extreme nanoscale confinement. This platform generates multiple copies of nanotubes with identical chirality, of diameters from 0.8 to 2.5 nm and lengths spanning 6 to 160 μm, that can be studied individually in real time before and after opening, exposure to water, and subsequent water filling. We demonstrate that, under controlled conditions, the diameter-dependent blue shift of the Raman radial breathing mode (RBM) between 1 and 8 cm measures an increase in the interior mechanical modulus associated with liquid water filling, with no response from exterior water exposure. The observed RBM shift with filling demonstrates a non-monotonic trend with diameter, supporting the assignment of a minimum of 1.81 ± 0.09 cm at 0.93 ± 0.08 nm with a nearly linear increase at larger diameters. We find that a simple hard-sphere model of water in the confined nanotube interior describes key features of the diameter-dependent modulus change of the carbon nanotube and supports previous observations in the literature. Longer segments of 160 μm show partial filling from their ends, consistent with pore clogging. These devices provide an opportunity to study fluid behavior under extreme confinement with high precision and repeatability.

摘要

尽管在极端受限条件下水的结构和性质对于各种应用至关重要,但人们对其仍知之甚少,尤其是对于尺寸小于2纳米的情况。在制造的纳米通道中控制表面粗糙度和维度存在困难,这使得这个问题更加复杂,导致缺乏能够进行必要精确测量的实验平台。在这项工作中,我们利用基于光刻分割、孤立的单壁碳纳米管内部的实验平台来研究极端纳米尺度受限下的水。这个平台能生成多个具有相同手性、直径从0.8到2.5纳米且长度跨越6到160微米的纳米管副本,这些纳米管在打开、接触水以及随后注水之前和之后都可以实时单独研究。我们证明,在受控条件下,拉曼径向呼吸模式(RBM)在1至8厘米之间与直径相关的蓝移测量了与液态水填充相关的内部机械模量的增加,而外部水暴露没有响应。观察到的填充时RBM的变化呈现出与直径的非单调趋势,支持在0.93±0.08纳米处最小值为1.81±0.09厘米且在较大直径处几乎呈线性增加的结论。我们发现,受限纳米管内部水的简单硬球模型描述了碳纳米管直径相关模量变化的关键特征,并支持了文献中先前的观察结果。160微米长的片段从其端部显示出部分填充,这与孔堵塞一致。这些装置为高精度和可重复性地研究极端受限下的流体行为提供了机会。

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