...
首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Ultrafast Dynamics of Liquid Water: Energy Relaxation and Transfer Processes of the OH Stretch and the HOH Bend
【24h】

Ultrafast Dynamics of Liquid Water: Energy Relaxation and Transfer Processes of the OH Stretch and the HOH Bend

机译:液态水的超快动力学:OH拉伸和HOH弯曲的能量弛豫和转移过程

获取原文
获取原文并翻译 | 示例
           

摘要

The vibrational energy relaxation and transfer processes of the OH stretching and HOH bending vibrations in liquid water are investigated via the theoretical calculation of the pump probe spectra obtained from nonequilibrium molecular dynamics simulations with the TTM3-F interaction potential. The excitation of the OH stretch induces an instantaneous response of the high frequency librational motions in the 600-1000 cm(-1) range. In addition, the excess energy of the OH stretch of a water molecule quickly transfers to the OH stretches of molecules in its first hydration shell with a time constant of similar to 50 fs, followed by relaxation to the HOH bends of the surrounding molecules with a time constant of 230 fs. The excitation of the HOH bend also results in the ultrafast excitation of the high frequency librational motions. The energy of the excited HOH bend of a water molecule decays, with a time constant of 200 fs, mainly to the relaxation of the HOH bends of its surrounding molecules. The energies of the HOH bends were found to transfer quickly to the intermolecular motions via the coupling with the high frequency librational motions. The excess energy of the OH stretch or the HOH bend relaxes to the high frequency intermolecular librational motions and eventually to the hot ground state with a time scale of similar to 1 ps via the coupling with the librational and translational motions. The energy relaxation and transfer processes were found to depend on the local hydrogen bonding network; the relaxations of the excess energy of the OH stretch and the HOH bend of four- and five-coordinated molecules are faster than those of a three-coordinated molecule due to the delocalization of the vibrational motions of the former (four- and five-coordinated molecules) compared to those of the later (three-coordinated molecules). The present results highlight the importance of the high frequency intermolecular librational modes in facilitating the ultrafast energy relaxation process in liquid water via their strong nonlinear couplings with the intramolecular OH stretching and HOH bending vibrations.
机译:通过从具有TTM3-F相互作用势的非平衡分子动力学模拟获得的泵浦探针光谱的理论计算,研究了液态水中OH拉伸和HOH弯曲振动的振动能量弛豫和传递过程。 OH拉伸的激发引起600-1000 cm(-1)范围内的高频自由运动的瞬时响应。此外,水分子的OH链段的多余能量以约50 fs的时间常数迅速转移到其第一个水化壳中的OH链段,然后以时间常数为230 fs。 HOH弯曲的激发还导致高频自由运动的超快激发。水分子的激发HOH弯曲的能量以200 fs的时间常数衰减,主要是由于其周围分子的HOH弯曲的松弛。人们发现,通过与高频自由运动耦合,HOH弯曲的能量迅速转移到分子间运动。 OH拉伸或HOH弯曲的多余能量通过与自由运动和平移运动的耦合而松弛到高频的分子间自由运动,并最终以大约1 ps的时间尺度松弛到热基态。发现能量的松弛和转移过程取决于局部的氢键网络。四和五配位分子的OH拉伸多余能量的松弛和HOH弯曲比三配位分子的弛豫快,这是由于前者的振动运动(四和五配位)分子)与后来的分子(三个配位分子)相比。本研究结果突出了高频分子间自由模式在促进液态水中超快速能量弛豫过程中的重要性,这些模式是通过其与分子内OH拉伸和HOH弯曲振动的强非线性耦合来实现的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号