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Contact electrification of insulating materials

Journal of Physics D Applied Physics · 2011 · Vol. 44(45) · pp. 453001–453001
Daniel J. LacksR. Mohan Sankaran

Abstract

The electrostatic charge that is generated when two materials are contacted or rubbed and then separated is a well-known physical process that has been studied for more than 2500 years. Contact electrification occurs in many contexts, both natural and technological. For example, in dust storms the collisions between particles lead to electrostatic charging and in extreme cases, extraordinary lightning displays. In electrophotography, toner particles are intentionally charged to guide their deposition in well-defined patterns. Despite such a long history and so many important consequences, a fundamental understanding of the mechanism behind contact electrification remains elusive. An open question is what type of species are transferred between the surfaces to generate charge—experiments suggest various species ranging from electrons to ions to nanoscopic bits of material, and theoretical work suggests that non-equilibrium states may play an important role. Another open question is the contact electrification that occurs when two insulating materials with identical physical properties touch—since there is no apparent driving force, it is not clear why charge transfer occurs. A third open question involves granular systems—models and experiments have shown that a particle-size dependence for the charging often exists. In this review, we discuss the fundamental aspects of contact electrification and highlight recent research efforts aimed at understanding these open questions.

Lightning and Electromagnetic PhenomenaElectrowetting and Microfluidic TechnologiesHigh voltage insulation and dielectric phenomenaContact electrificationElectrificationCharge (physics)Engineering physicsChemical physicsNanotechnologyElectric chargeElectrostaticsIonMaterials science

Funding

  • National Science Foundation
Citations
548
FWCI
18.63
field-weighted impact
References
141
Percentile
100%
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Citations per year
References
Charge generation on dielectric surfaces
Journal of Physics D Applied Physics · 1969 · 597 citations
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