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Reactive molecular dynamics simulations of switching processes of azobenzene-based monolayer on surface

机译:表面偶氮苯单层转换过程的反应性分子动力学模拟

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It is a challenge to simulate the switching process of functional self-assembled monolayers (SAMs) on metal surfaces, since the systems consist of thousands of atoms and the switching is triggered by quantum-mechanical events. Herein a molecular dynamics simulation with a reactive rotation potential of N=N bond is implemented to investigate the dynamic conformational changes and packing effects on the stimuli-responsive isomerization of the terminally thiol functionalized azobiphenyls (AZOs), which are bound on the Au(111) surface. To, respectively, distinguish the time evolutions that start from cis and trans initial configurations, two different functions are established to model the potential energy curves for cis-to-trans and trans-to-cis transitions, instead of the only one cosine function used in the conventional non-reactive force fields. In order to simulate the conformation transitions of the AZO film on surface, a random switching function, depending on the N=N twisting angle, is constructed to consider both forward and backward cis/trans isomerization events and to trigger the reaction by changing the N atom types automatically. The factors that will influence the isomerization process, including the choice of ensembles and thermostat algorithms, the time intervals separating each switching, and the forms of the switching function, are systematically tested. Most AZO molecules switch from the cis to trans configuration with a coverage of 5.76 × 10~(-6) mol/m~2 on a picosecond time scale, and a low coverage might make the switching irreversible, which is in agreement with the experiments.
机译:在金属表面上模拟功能自组装单分子层(SAM)的转换过程是一个挑战,因为该系统由数千个原子组成,并且转换是由量子力学事件触发的。在本文中,使用反应性旋转电位N = N键的分子动力学模拟来研究动力学构象变化和堆积效应对末端硫醇官能化的偶氮联苯(AZO)的刺激响应异构化的影响,AZO结合在Au(111)上)表面。为了分别区分从顺式和反式初始构型开始的时间演化,建立了两个不同的函数来建模顺式到反式和反式到顺式转变的势能曲线,而不是仅使用一个余弦函数在常规的非反应力领域。为了模拟表面上AZO膜的构象转变,根据N = N扭转角,构造了一个随机开关函数来考虑正向和反向顺式/反式异构化事件并通过改变N来触发反应原子类型自动。系统地测试了会影响异构化过程的因素,包括集成体的选择和恒温器算法,分隔每个开关的时间间隔以及开关功能的形式。大多数AZO分子从cis转变为反式构型,在皮秒级时的覆盖范围为5.76×10〜(-6)mol / m〜2,低的覆盖范围可能使转换不可逆,这与实验一致。

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