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氢氧根离子可以比过剩的质子更快地通过疏水窄孔中的一维水分子链。

Hydroxide ion can move faster than an excess proton through one-dimensional water chains in hydrophobic narrow pores.

机构信息

Department of Chemistry, Indian Institute of Technology, Kanpur, India 208016.

出版信息

J Phys Chem B. 2012 Aug 16;116(32):9744-57. doi: 10.1021/jp301466e. Epub 2012 Aug 7.

Abstract

Carbon nanotubes (CNT) are known to provide a hydrophobic, confined environment for water where its structure and dynamics can be very different from those of bulk water. In particular, narrow CNTs of the type (6,6) allow only a single one-dimensional (1D) chain of water molecules inside them, thus providing an idealized scenario to study motion in 1D along water chains. In the present study, we have investigated structural and dynamic behavior of water and also of an excess proton and hydroxide ion in water-filled narrow CNTs by means of ab initio molecular dynamics and combined quantum-classical simulations. The main focus of the present work is on the molecular mechanism and kinetics of hydronium and hydroxide ion migration along 1D water chains of different lengths in confinement. It is found that the hydrogen-bonded structures of water and the excess proton and hydroxide ion in CNTs can be very different from those in bulk, and these altered solvation structures play critical roles in determining the proton-transfer (PT) rates along water chains. For the present 1D chain systems, the hydroxide ion is found to migrate at a slightly faster rate than the excess proton, unlike their relative mobilities in bulk water. This faster migration of the hydroxide ion is found not only in CNTs with periodicity along the tube axis but also in isolated CNTs where the excess proton and the hydroxide ion are allowed to move under the influence of an electric field of an oppositely charged ion. The roles of rotational jumps and hydrogen-bond fluctuations in the PT events are discussed. In addition, the significance of hydrogen-bonding defects on the dynamics of an excess proton and hydroxide ion is also discussed for varying chain lengths.

摘要

碳纳米管 (CNT) 以提供疏水、受限的水环境而闻名,在这种环境中,水的结构和动力学可能与体相中的水有很大的不同。特别是,(6,6) 类型的窄 CNT 只允许单个一维 (1D) 水分子链在其中,从而为研究沿水分子链的一维运动提供了理想化的场景。在本研究中,我们通过从头算分子动力学和组合量子经典模拟研究了填充有窄 CNT 中的水以及过量质子和氢氧根离子的结构和动态行为。本工作的主要重点是在受限条件下沿不同长度的一维水分子链迁移的质子化和氢氧根离子迁移的分子机制和动力学。结果发现,CNT 中水分子和过量质子和氢氧根离子的氢键结构可能与体相中的结构有很大的不同,这些改变的溶剂化结构在决定质子转移 (PT) 速率沿水分子链中起着关键作用。对于本 1D 链体系,发现氢氧根离子的迁移速度略快于过量质子,这与它们在体相水中的相对迁移率不同。这种氢氧根离子的更快迁移不仅在沿管轴周期性的 CNT 中发现,而且在允许过量质子和氢氧根离子在带相反电荷的离子的电场作用下移动的孤立 CNT 中也发现。讨论了 PT 事件中旋转跃迁和氢键波动的作用。此外,还讨论了氢键缺陷对不同链长的过量质子和氢氧根离子动力学的影响。

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