Ojha Deepak, Saalfrank Peter
Institute of Chemistry, Potsdam University, Karl-Liebknecht-Strasse 24-25, D-14476, Potsdam-Golm, Germany.
Sci Rep. 2025 Aug 1;15(1):28144. doi: 10.1038/s41598-025-14266-8.
Water strongly confined in nanostructures such as carbon nanotubes (CNTs) exhibits structural, dielectric, transport, dynamical and thermodynamical properties vastly different from bulk water, due to a strong modification of the (three-dimensional) hydrogen bond network. In this work, we mainly address the following aspects of extremely confined, quasi-one dimensional water chains in CNTs which have have not been emphasized much so far: The effect of chirality of the CNT, strong interactions with the hydrophobic walls and the (altered) vibrational response of confined water. Specifically, we have studied the (i) translation / diffusion, (ii) rotation / reorientation and (iii) vibrations of water chains confined within narrow carbon nanotubes (CNTs) with chirality indices (6,2), (6,4) and (6,6) using ab initio molecular dynamics. Special emphasis is on vibrational spectra, notably in the OH stretch region, obtained from fluctuations in the local OH stretching modes which were further employed to obtain two-dimensional infrared spectra and frequency-frequency correlation functions. We find that the vibrational distribution of water molecules under confinement is overall blue-shifted in comparison to bulk water, due to a breakdown of the three-dimensional hydrogen bond network. Further, the vibrational dynamics were found to dependent strongly upon the chirality and diameter of the CNTs, the latter causing stronger hydrophobic interactions with the walls of the nanotube. With respect to translational and rotational motion, the CNT-confined water molecules exhibit slower translational diffusion and faster reorientational motion compared to bulk liquid water for all cases simulated in this work.
由于(三维)氢键网络的强烈改变,被强烈限制在诸如碳纳米管(CNT)等纳米结构中的水呈现出与 bulk water 截然不同的结构、介电、输运、动力学和热力学性质。在这项工作中,我们主要关注迄今为止尚未得到充分强调的碳纳米管中极度受限的准一维水链的以下几个方面:碳纳米管手性的影响、与疏水壁的强相互作用以及受限水的(改变的)振动响应。具体而言,我们使用从头算分子动力学研究了手性指数为(6,2)、(6,4)和(6,6)的窄碳纳米管内受限水链的(i)平移/扩散、(ii)旋转/重新定向和(iii)振动。特别强调的是从局部 OH 伸缩模式的波动中获得的振动光谱,尤其是在 OH 伸缩区域,这些光谱进一步用于获得二维红外光谱和频率-频率相关函数。我们发现,与 bulk water 相比,受限状态下水分子的振动分布总体上发生了蓝移,这是由于三维氢键网络的破坏。此外,发现振动动力学强烈依赖于碳纳米管的手性和直径,后者与纳米管壁产生更强的疏水相互作用。关于平移和旋转运动,在本工作模拟的所有情况下,与 bulk liquid water 相比,碳纳米管受限的水分子表现出较慢的平移扩散和较快的重新定向运动。