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磷酸及其阴离子的水合结构与动力学——超快二维红外光谱和从头算分子动力学模拟

Hydration structure and dynamics of phosphoric acid and its anions-Ultrafast 2D-IR spectroscopy and ab initio molecular dynamics simulations.

作者信息

Kundu Achintya, Fingerhut Benjamin P, Elsaesser Thomas

机构信息

Max Born Institut für Nichtlineare Optik und Kurzzeitspektroskopie, Berlin 12489, Germany.

Department Chemie and Centre for NanoScience, Ludwig-Maximilians-Universität München, München 81377, Germany.

出版信息

J Chem Phys. 2024 Aug 28;161(8). doi: 10.1063/5.0216640.

Abstract

The hydration shells of phosphate ions and phosphate groups of nucleotides and phospholipid membranes display markedly different structures and hydrogen-bond strengths. Understanding phosphate hydration requires insight into the spatial arrangements of water molecules around phosphates and in thermally activated structure fluctuations on ultrafast time scales. Femtosecond two-dimensional infrared spectroscopy of phosphate vibrations, particularly asymmetric stretching vibrations between 1000 and 1200 cm-1, and ab initio molecular dynamics (AIMD) simulations are combined to map and characterize dynamic local hydration structures and phosphate-water interactions. Phosphoric acid H3PO4 and its anions H2PO4-, HPO42-, and PO43- are studied in aqueous environments of different pH value. The hydration shells of phosphates providing OH donor groups in hydrogen bonds with the first water layer undergo ultrafast structural fluctuations, which induce a pronounced spectral diffusion of vibrational excitations on a sub-300 fs time scale. With a decreasing number of phosphate OH groups, the hydration shell becomes more ordered and rigid. The 2D-IR line shapes observed with hydrated PO43- ions display a pronounced inhomogeneous broadening, reflecting a distribution of hydration geometries without fast equilibration. The AIMD simulations allow for an in-depth characterization of the hydration geometries with different numbers of water molecules in the first hydration layer and different correlation functions of the fluctuating electric field that the water environment exerts on the vibrational phosphate oscillators.

摘要

核苷酸和磷脂膜中磷酸根离子及磷酸基团的水合壳层呈现出明显不同的结构和氢键强度。理解磷酸根水合作用需要深入了解磷酸根周围水分子的空间排列以及超快时间尺度上的热激活结构波动。结合磷酸根振动的飞秒二维红外光谱,特别是1000至1200厘米-1之间的不对称伸缩振动,以及从头算分子动力学(AIMD)模拟,来绘制和表征动态局部水合结构及磷酸根 - 水相互作用。在不同pH值的水环境中研究了磷酸H3PO4及其阴离子H2PO4-、HPO42-和PO43-。在与第一层水形成氢键时提供OH供体基团的磷酸根的水合壳层经历超快结构波动,这在亚300飞秒时间尺度上引发振动激发的显著光谱扩散。随着磷酸根OH基团数量减少,水合壳层变得更加有序和刚性。水合PO43-离子观察到的二维红外线形显示出明显的非均匀展宽,反映了水合几何结构的分布且没有快速平衡。AIMD模拟能够深入表征第一层水合层中具有不同水分子数量以及水环境施加在振动磷酸根振荡器上的波动电场的不同相关函数的水合几何结构。

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