接触带电
摩擦电效应
电气化
离子
化学物理
电荷(物理)
电子转移
原子物理学
极地的
静电学
材料科学
传热
电子
等离子体
物理
相(物质)
机械
分子物理学
氧化剂
电荷
液相
纳米技术
传输(计算)
分析化学(期刊)
液态水
静电感应
静电放电
作者
Rutvik Lathia,Benjamin Leibauer,Aaron D. Ratschow,W. Steffen,Hans‐Jürgen Butt
标识
DOI:10.1038/s41567-026-03449-3
摘要
Abstract The microscopic and fundamental origin of slide electrification, which happens when water drops move across insulating surfaces while accumulating and depositing electrical charges, is still debated. Charge transfer is often attributed to ion transfer at the receding contact line. However, it remains an open question whether ion transfer alone can fully account for the observed charge separation. Here we examined slide electrification of polar, self-ionizing liquids and non-polar liquids. By cooling them below the melting temperature, we were able to compare this process to tribocharging of the respective frozen components. Despite reduced ion mobility at sub-freezing temperatures, the frozen polar compounds continued to accumulate substantial charge. Non-polar liquids exhibited lower charging and nearly identical charging behaviour in both their liquid and frozen phases on different substrates. As non-polar liquids contain few free ions, these observations indicate an alternative charging mechanism, which could be electron transfer. Our findings suggest that slide electrification operates through at least two mechanisms, with the dominant charge transfer pathway shifting between ions and electron transfer depending on electronegativity, phase and temperature.
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