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Distinct Self‐Discharge Processes via Manipulating Electrode Pore Size of Carbon‐Based Electrochemical Capacitors

Qing Zhang, Yuru Wang, Bingqing Wei

2023Advanced Energy Materials17 citationsDOIOpen Access PDF

Abstract

Abstract Controlling self‐discharge has become imperative for developing advanced electrochemical capacitors for periodic energy storage and integrated circuit design with superior cyclability and long lifespan. Carbons with various pore size distributions exhibit distinct self‐discharge performances where the voltage decay rate evolves differently as self‐discharge proceeds. A “three‐stage” self‐discharge model and the concept of two self‐discharge drags are proposed, depicting the evolution of driving forces in different carbons. The trajectory of ion migrating out of the double‐layer structure can be broken down section‐wise and correlated to specific impedance parameters by analyzing the diffusion kinetics data collected throughout the process, which can be further traced back to the structure‐dependent drags. The findings deepen the understanding of self‐discharge behavior and the effects of pore size on ionic diffusion kinetics, which will inspire exploring the underlying mechanism from a structural characteristics perspective.

Topics & Concepts

Materials scienceCapacitorDiffusionElectrochemistrySelf-dischargeKineticsElectrodeIonic bondingChemical physicsCarbon fibersIonVoltageNanotechnologyChemical engineeringComposite materialThermodynamicsPhysical chemistryElectrical engineeringChemistryPhysicsComposite numberEngineeringElectrolyteOrganic chemistryQuantum mechanicsSupercapacitor Materials and FabricationConducting polymers and applicationsAdvanced Sensor and Energy Harvesting Materials