AI Article Synopsis

  • Understanding charge storage kinetics is crucial for developing better battery materials and performance.
  • The study focuses on how structural ordering in organic electrode materials affects their charge storage mechanisms.
  • Results show that a crystalline material faces diffusion limitations due to structural changes, while an amorphous polymer enhances rate performance by allowing faster ionic transport during charge and discharge.

Article Abstract

Understanding the properties that govern the kinetics of charge storage will enable informed design strategies and improve the rate performance of future battery materials. Herein, we study the effects of structural ordering in organic electrode materials on their charge storage mechanisms. A redox active unit, ,'-diphenyl-phenazine, was incorporated into three materials which exhibited varying degrees of ordering. From cyclic voltammetry analysis, the crystalline small molecule exhibited diffusion-limited behavior, likely arising from structural rearrangements that occur during charge/discharge. Conversely, a branched polymer network displayed surface-controlled kinetics, attributed to the amorphous structure which enabled fast ionic transport throughout charge/discharge, unimpeded by sluggish structural rearrangements. These results suggest a method for designing new materials for battery electrodes with battery-like energy densities and pseudocapacitor-like rate capabilities.

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Source
http://dx.doi.org/10.1021/acsami.0c19622DOI Listing

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