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Electric Field Induced Switching Behaviors of Monolayer-Modified Silicon Surfaces: Surface Designs and Molecular Dynamics Simulations

机译:电场诱导的单层改性硅表面的开关行为:表面设计和分子动力学模拟

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摘要

Electric field induced switching behaviors of a series of low-density ω-carboxyalkyl modified H-Si-(111) and the mixed ω-carboxyalkyl/alkyl covered H-Si(111) have been simulated by using molecular dynamics (MD) simulation techniques. The external electric fields may drive surface-confined molecules to reversibly change conformations between the all-trans (switching 'on') and the mixed trans-gauche (switching 'off') states. Such surfaces switch wettabilities between the hydrophilic state and the moderately hydrophobic state. It has been found in broad ranges of intensities of applied electric fields, -2.0 x 10~9 V/m ≤ E_(down) ≤ 0 and 1.8 x 10~9 V/m ≤ E_(up) ≤ 7.3 x 10~9 V/m, both the low-density (11.1%-33.3%) ω-carboxyalkyl and the mixed ω-carboxyalkyl/alkyl (in mole fraction of 0.4 ≤ N_(carboxyalkyl) : N_(alkyl) ≤ 3.0) monolayers covering H-Si(111) exhibit conformational switching in the aqueous medium. The critical intensity of the electric field, E_(up) = 1.8 x 10~9 V/m, which is required to trigger the switches is observed by our MD simulations and further rationalized by a thermodynamical model. Some important factors in the control of switching performances, such as the steric hindrances, the formation of the electric double layer at the monolayer/electrolyte solution interface, the hydration effects of carboxylate anions, the components of surrounding electrolyte solutions, as well as the rigidity of surface-confined chains are elucidated. The lower ionic strength and additions of acetonitrile molecules in the surrounding aqueous solution can reduce the value of critical intensity of the electric field and hence facilitate the realization of switching. Some practical considerations in construction and optimum design of switching surfaces are also suggested.
机译:利用分子动力学(MD)模拟技术对一系列低密度ω-羧基烷基改性的H-Si-(111)和混合的ω-羧基烷基/烷基覆盖的H-Si(111)的电场诱导的开关行为进行了模拟。外部电场可以驱动表面受限的分子可逆地改变全反式(切换为“开”)状态和混合反式(切换为“关”)状态之间的构象。这样的表面在亲水状态和中等疏水状态之间切换润湿性。已经发现,施加的电场强度范围很广,-2.0 x 10〜9 V / m≤E_(down)≤0和1.8 x 10〜9 V / m≤E_(up)≤7.3 x 10〜9 V / m,覆盖H-的低密度(11.1%-33.3%)ω-羧基烷基和混合的ω-羧基烷基/烷基(摩尔分数为0.4≤N_(羧基烷基):N_(烷基)≤3.0) Si(111)在水性介质中显示构象转换。触发开关所需的电场临界强度E_(up)= 1.8 x 10〜9 V / m可通过我们的MD模拟观察到,并通过热力学模型进一步合理化。控制开关性能的一些重要因素,例如空间位阻,在单层/电解质溶液界面处形成双电层,羧酸根阴离子的水合作用,周围电解质溶液的成分以及刚性表面约束链的阐明。较低的离子强度和周围水溶液中乙腈分子的添加会降低电场的临界强度值,因此有助于实现转换。还提出了一些有关开关表面的构造和最佳设计的实际考虑。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2005年第18期|p.6802-6813|共12页
  • 作者

    Yong Pei; Jing Ma;

  • 作者单位

    Department of Chemistry, Institute of Theoretical and Computational Chemistry, Key Lab of Mesoscopic Chemistry of MOE, Nanjing University, Nanjing, 210093, People's Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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