The Abdus Salam International Centre for Theoretical Physics, Trieste, Italy.
International School for Advanced Studies (SISSA), Trieste, Italy.
Nat Commun. 2023 Mar 11;14(1):1345. doi: 10.1038/s41467-023-37069-9.
Understanding the microscopic origins of collective reorientational motions in aqueous systems requires techniques that allow us to reach beyond our chemical imagination. Herein, we elucidate a mechanism using a protocol that automatically detects abrupt motions in reorientational dynamics, showing that large angular jumps in liquid water involve highly cooperative orchestrated motions. Our automatized detection of angular fluctuations, unravels a heterogeneity in the type of angular jumps occurring concertedly in the system. We show that large orientational motions require a highly collective dynamical process involving correlated motion of many water molecules in the hydrogen-bond network that form spatially connected clusters going beyond the local angular jump mechanism. This phenomenon is rooted in the collective fluctuations of the network topology which results in the creation of defects in waves on the THz timescale. The mechanism we propose involves a cascade of hydrogen-bond fluctuations underlying angular jumps and provides new insights into the current localized picture of angular jumps, and its wide use in the interpretations of numerous spectroscopies as well in reorientational dynamics of water near biological and inorganic systems. The role of finite size effects, as well as of the chosen water model, on the collective reorientation is also elucidated.
理解水相体系中集体重取向运动的微观起源需要能够超越我们化学想象力的技术。在此,我们通过一种自动检测重取向动力学中突然运动的方案阐明了一种机制,表明液体水中的大角度跳跃涉及高度协作的协调运动。我们自动检测角波动,揭示了系统中协同发生的角跳跃类型的异质性。我们表明,大的取向运动需要一个高度集体的动力学过程,涉及氢键网络中许多水分子的相关运动,这些水分子形成空间连接的簇,超出局部角跳跃机制。这种现象源于网络拓扑的集体波动,导致在太赫兹时间尺度上形成波的缺陷。我们提出的机制涉及氢键波动的级联,为角跳跃的当前局部图像及其在众多光谱学以及生物和无机系统附近水的重取向动力学中的广泛应用提供了新的见解。还阐明了有限尺寸效应以及所选水模型对集体重取向的作用。