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ELECTRIC POTENTIAL NEAR A CHARGED METAL SURFACE IN CONTACT WITH AQUEOUS ELECTROLYTE

机译:与带电电解质接触的带电金属表面附近的电势

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The time independent electric potential due to water and a lithium ion near a charged metal surface is calculated by space and ensemble averaging of trajectories generated by a molecular dynamics simulation. Since the cation does not contact adsorb, variations in the electric potential near the metal surface are due to water oriented in the electric field of the charged surface. The potential is decomposed into separate contributions from monopoles (from the ions), and dipoles, quadrupoles and octopoles (from the water molecules). At distances greater than about 0.5 nm from the electrode (two to three water molecules) the potential is 'flat' with the quadrupole contributing most due to a near cancellation of the ion and water dipole components. Approaching the surface, weak features are encountered due to water packing and then a big oscillation due to water oriented in a layer next to the electrode. None of these effects are described in theories that approximate water as a continuum fluid. [References: 21]
机译:由水和锂离子在带电金属表面附近产生的与时间无关的电势通过分子动力学模拟生成的轨迹的空间和集合平均来计算。由于阳离子不与吸附剂接触,因此金属表面附近的电势变化是由于在带电表面的电场中定向的水引起的。势被分解成单极(来自离子),偶极,四极和八极(来自水分子)的单独贡献。与电极(两到三个水分子)之间的距离大于约0.5 nm时,电势是“平坦的”,其中四极起最大作用,这是由于离子和水偶极子成分几乎抵消了。接近表面时,由于水的堆积会遇到较弱的特征,然后由于水在电极旁边的层中定向而导致较大的振荡。在将水近似为连续流体的理论中,没有描述这些效果。 [参考:21]

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