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Hydrogen bond dynamics and microscopic structure of confined water inside carbon nanotubes

机译:碳纳米管内部承压水的氢键动力学和微观结构

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We have investigated the density and temperature dependences of microscopic structure and hydrogen bond dynamics of water inside carbon nanotubes (CNTs) using molecular dynamics simulation. The CNTs are treated as rigid, and smoothly truncated extended simple point charge water model is adopted. The results show that as the overall density increases, the atomic density profiles of water inside CNTs become sharper, the peaks shift closer to the wall, and a new peak of hydrogen atomic density appears between the first (outermost) and second layer. The intermittent hydrogen bond correlation function C-HB(t) of water inside CNTs decays slower than that of bulk water, and the rate of decay decreases as the tube diameter decreases. C-HB(t) clearly decays more slowly for the first layer of water than for other regions inside CNTs. The C-HB(t) of the interlayer hydrogen bonds decays faster than those of the other regions and even faster than that of the bulk water. On the other hand, the hydrogen bond lifetimes of the first layer are shorter than those of the inner layer(s). Interlayer hydrogen bond lifetimes are clearly shorter than those of the constituent layers. As a whole, the hydrogen bond lifetimes of water inside CNTs are shorter than those of bulk water, while the relaxation of C-HB(t) is slower for the confined water than for bulk water. In other words, hydrogen bonds of water inside CNTs break more easily than those of bulk water, but the water molecules remain in each other's vicinity and can easily reform the bonds.
机译:我们已经使用分子动力学模拟研究了碳纳米管(CNTs)内部微观结构的密度和温度依赖性以及水的氢键动力学。将碳纳米管视为刚性,并采用平滑截断的扩展单点电荷水模型。结果表明,随着总密度的增加,碳纳米管内部的水的原子密度分布变得更加清晰,峰向壁的方向移动,并且在第一层(最外层)和第二层之间出现了一个新的氢原子密度峰。碳纳米管内部的水的间歇性氢键相关函数C-HB(t)的衰减要比本体水慢,并且衰减的速率随管径的减小而减小。显然,第一层水的C-HB(t)衰减比CNT内部的其他区域慢。层间氢键的C-HB(t)衰减快于其他区域,甚至快于大量水。另一方面,第一层的氢键寿命短于内层的氢键寿命。层间氢键的寿命明显短于组成层的氢键的寿命。总体而言,碳纳米管中水的氢键寿命短于散装水,而承压水的C-HB(t)弛豫比散装水慢。换句话说,CNT内部的水的氢键比散装的水更容易断裂,但是水分子保留在彼此的附近并且可以轻松地重新形成键。

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