Härtl Andreas, Garrido Jose A, Nowy Stefan, Zimmermann Ralf, Werner Carsten, Horinek Dominik, Netz Roland, Stutzmann Martin
Walter Schottky Institut, Technische Universität München, Garching, Germany.
J Am Chem Soc. 2007 Feb 7;129(5):1287-92. doi: 10.1021/ja066543b.
Charge build-up at the solid/aqueous interface is a ubiquitous phenomenon that determines the properties of interfacial electrical double layers. Due to its unique properties, the surface of diamond offers an attractive platform to investigate charging mechanisms in aqueous solutions. We investigate the surface charge by studying the ion sensitivity of H-terminated single crystalline diamond surface conductive layers. The effect of monovalent and divalent salts has been probed at different pH values. For a pH above 3.5, increasing the ionic strength results in a decrease of the surface conductivity, in contrast to the results obtained for pH below 3.5. Electrokinetic experiments are in good agreement with the surface conductivity measurements, showing an isoelectric point at pH 3.5 for the H-terminated diamond surface. We discuss the results in terms of the Coulombic screening by electrolyte ions of the surface potential, which is induced by a pH-dependent surface charge. The origin of this surface charge is discussed in terms of charge regulation by amphoteric hydroxyl surface groups and unsymmetrical adsorption of hydroxide and hydronium ions induced by the hydrophobic nature of the H-terminated diamond surface. This surface charge can have important consequences for processes governed by the diamond/aqueous interface, such as electron transfer to charged redox molecules, adsorption of charged molecules and proteins, and ion sensitivity.
固体/水界面处的电荷积累是一种普遍存在的现象,它决定了界面双电层的性质。由于其独特的性质,金刚石表面为研究水溶液中的充电机制提供了一个有吸引力的平台。我们通过研究氢终止的单晶金刚石表面导电层的离子敏感性来研究表面电荷。在不同的pH值下探测了单价盐和二价盐的影响。与pH值低于3.5时获得的结果相反,对于pH值高于3.5的情况,增加离子强度会导致表面电导率降低。电动实验与表面电导率测量结果吻合良好,表明氢终止的金刚石表面在pH值为3.5时存在等电点。我们根据表面电位的电解质离子库仑屏蔽来讨论结果,表面电位是由pH值依赖的表面电荷引起的。从两性羟基表面基团的电荷调节以及氢终止的金刚石表面的疏水性引起的氢氧根离子和水合氢离子的不对称吸附方面讨论了这种表面电荷的起源。这种表面电荷对于由金刚石/水界面控制的过程可能会产生重要影响,例如向带电氧化还原分子的电子转移、带电分子和蛋白质的吸附以及离子敏感性。