Zhang Hang, Sundaresan Sankaran, Webb Michael A
Department of Chemistry, Princeton University, Princeton, NJ, 08544, USA.
Department of Chemical and Biological Engineering, Princeton University, Princeton, NJ, 08544, USA.
Nat Commun. 2024 Mar 23;15(1):2616. doi: 10.1038/s41467-024-46932-2.
Contact electrification, or contact charging, refers to the process of static charge accumulation after rubbing, or even simple touching, of two materials. Despite its relevance in static electricity, various natural phenomena, and numerous technologies, contact charging remains poorly understood. For insulating materials, even the species of charge carrier may be unknown, and the direction of charge-transfer lacks firm molecular-level explanation. Here, we use all-atom molecular dynamics simulations to investigate whether thermodynamics can explain contact charging between insulating polymers. Based on prior work suggesting that water-ions, such as hydronium and hydroxide ions, are potential charge carriers, we predict preferred directions of charge-transfer between polymer surfaces according to the free energy of water-ions within water droplets on such surfaces. Broad agreement between our predictions and experimental triboelectric series indicate that thermodynamically driven ion-transfer likely influences contact charging of polymers. Furthermore, simulation analyses reveal how specific interactions of water and water-ions proximate to the polymer-water interface explain observed trends. This study establishes relevance of thermodynamic driving forces in contact charging of insulators with new evidence informed by molecular-level interactions. These insights have direct implications for future mechanistic studies and applications of contact charging involving polymeric materials.
接触起电,或接触充电,是指两种材料在摩擦甚至简单接触后静电荷积累的过程。尽管它在静电、各种自然现象以及众多技术中都很重要,但接触充电仍然鲜为人知。对于绝缘材料,甚至电荷载流子的种类都可能未知,而且电荷转移的方向缺乏可靠的分子层面解释。在这里,我们使用全原子分子动力学模拟来研究热力学是否能够解释绝缘聚合物之间的接触充电现象。基于先前的研究表明水合离子(如氢离子和氢氧根离子)是潜在的电荷载流子,我们根据此类表面上水滴内水合离子的自由能来预测聚合物表面之间电荷转移的优先方向。我们的预测与实验摩擦电序列之间的广泛一致性表明,热力学驱动的离子转移可能会影响聚合物的接触充电。此外,模拟分析揭示了靠近聚合物 - 水界面的水和水合离子的特定相互作用如何解释观察到的趋势。这项研究通过分子层面相互作用提供的新证据,确立了热力学驱动力在绝缘体接触充电中的相关性。这些见解对未来涉及聚合物材料的接触充电的机理研究和应用具有直接影响。