化学
表面力仪
化学物理
单层
粘附
云母
纳米技术
吸附
电解质
离子
分子动力学
表面力
分子间力
分子
表面改性
电化学
表面电荷
静电学
静电
离子键合
胶粘剂
电动现象
结构化
模板
胶体
调制(音乐)
化学工程
自组装单层膜
水溶液中的金属离子
疏水效应
机制(生物学)
作者
Valentina Wieser,Ya-Ting Yu,Andrea Valencia Ramirez,David T. Wu,Frank Uwe Renner,Hsiu‐Wei Cheng
摘要
The interplay of specific surface interactions as well as ion and hydration structuring takes on a pivotal role in dictating the intermolecular, intersurface, and colloidal behavior at solid-liquid interfaces. The detailed atomic and molecular structure consequently influences a wide array of surface-mediated functions in technological and biological systems. Ion and hydration structuring at the interface is susceptible to various surface parameters, including surface potential, structural modifications including molecular adsorbents, the charge of specific functional groups, and electrolyte composition. Here, we disclose an electromechanical adhesion switch mechanism and demonstrate, in operation, the impact of molecular surface modification and potential modulation on adhesive and repulsive forces between surfaces. We exemplify these fundamental interactions by measuring the acting intermolecular forces between mica and metal surfaces modified with self-assembled monolayers including mercaptobenzimidazole and cysteamine films, showcasing the potential for tailoring surface interactions via ion adsorption manipulation. Employing an electrochemical surface forces apparatus complemented with molecular dynamics simulation, we present a comprehensive analysis of the specific forces involved in film-mica interactions and the impact of ion ordering under electrochemical modulation on such forces. Our results offer a novel perspective on how hydration and ion adsorption shape solid-solid interactions involving organic thin films and how these interactions provide a flexible route for electromechanical adhesion switches.
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