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协同效应:液/固界面处温度辅助电场诱导的超分子相变

Synergic Effect: Temperature-Assisted Electric-Field-Induced Supramolecular Phase Transitions at the Liquid/Solid Interface.

作者信息

Mahmood Ayyaz, Saeed Muhammad, Chan Yue, Saleemi Awais Siddique, Guo Jiangtao, Lee Shern-Long

出版信息

Langmuir. 2019 Jun 18;35(24):8031-8037. doi: 10.1021/acs.langmuir.9b00569. Epub 2019 Jun 4.

DOI:10.1021/acs.langmuir.9b00569
PMID:31120252
Abstract

Using trimesic acid (TMA) as a model system by means of scanning tunneling microscope (STM) equipped with a temperature controller, here, we report a temperature-assisted method to cooperatively control electric-field-induced supramolecular phase transitions at the liquid/solid interface. Octanoic acid is used as a solvent due to its good solubility for TMA and its less complicated pattern formed under negative STM bias (e.g., only chicken-wire polymorphs existing). At positive substrate bias, STM revealed that TMA assembly based on temperature modulations underwent phase transitions from a porous (22 °C) to a flower (45 °C) and further to a zigzag (68 °C) structure. The transitions are ascribed to the partial deprotonation of the carboxyl groups of TMA. Both the temperature and electrical polarity of the substrate are crucial, i.e., the transitions only take place at positive substrate bias and elevated temperatures. Molecular mechanics simulations were carried out to calculate the temperature and electric field dependence of the adsorption enthalpy and free energy of the chicken-wire assembly of TMA on the two layers of graphene surface. The calculated decrease in adsorption enthalpy with the increase of temperature and electric field values that causes the TMA chicken-wire assembly to be less stable is proposed to promote the occurrence of the phase transition observed by STM. This study paves the way toward program-controlled supramolecular phase switching via the synergic effect of electrical and thermal stimuli.

摘要

借助配备温度控制器的扫描隧道显微镜(STM),以偏苯三酸(TMA)作为模型体系,在此我们报道一种温度辅助方法,用于协同控制液/固界面处电场诱导的超分子相变。由于辛酸对TMA具有良好的溶解性,且在负STM偏压下形成的图案较简单(例如,仅存在鸡笼状多晶型物),因此使用辛酸作为溶剂。在正衬底偏压下,STM显示基于温度调制的TMA组装体经历了从多孔结构(22℃)到花朵结构(45℃),再到之字形结构(68℃)的相变。这些转变归因于TMA羧基的部分去质子化。衬底的温度和电极性都至关重要,即转变仅在正衬底偏压和升高的温度下发生。进行了分子力学模拟,以计算TMA在两层石墨烯表面的鸡笼状组装体的吸附焓和自由能对温度和电场的依赖性。计算结果表明,随着温度和电场值的增加,吸附焓降低,这使得TMA鸡笼状组装体稳定性降低,从而促进了STM观察到的相变的发生。这项研究为通过电刺激和热刺激的协同效应实现程序控制超分子相切换铺平了道路。

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