Real-time evaluation of charge transfer pattern at buried ionotronic interfaces
Abstract
Bionic and triboelectrification based ionotronics - an emerging field that bridges ions and electrons at an insulative-metallic interface - form an electric double layer (EDL), which determines charge desolation, deposition, and transfer patterns. Therefore, mechanistic evaluation of the EDL interface is imperative. However, EDL forms at a unidirectional buried interface below the insulative layer, which impedes its real-time monitoring via electrochemical methods, probe microscopy, and spectral excitation. This study for the first time evaluates the EDL of ionotronics using insitu electrochemical impedance spectroscopy in conjunction with triboelectrification perturbation as an alternative to the dynamic reversible carriers of a conventional electrochemical cell. The charge dynamics at the insulative-metallic interface are elucidated by four patterns of charge transfer, charge recombination due to electrode-initiated polarity, precipitation of oppositely charged ion at EDL, and hindered diffusion of delocalized charge. These patterns help explore neuromorphic interfaces, noise-cancellation and intricate EDL of miniaturized robots, and enhance power sensitivity and longevity of self-powered sensors. The approach used in this work can be utilized to study a variety of buried-interfaces.