Literature DB >> 34299463

Enhanced Electrochemical Performance of Supercapacitors via Atomic Layer Deposition of ZnO on the Activated Carbon Electrode Material.

Chongrui Wu1, Fuming Zhang1, Xiangshang Xiao1, Junyan Chen1, Junqi Sun1, Dayakar Gandla1, Yair Ein-Eli2, Daniel Q Tan1.   

Abstract

Fabricating electrical double-layer capacitors (EDLCs) with high energy density for various applications has been of great interest in recent years. However, activated carbon (AC) electrodes are restricted to a lower operating voltage because they suffer from instability above a threshold potential window. Thus, they are limited in their energy storage. The deposition of inorganic compounds' atomic layer deposition (ALD) aiming to enhance cycling performance of supercapacitors and battery electrodes can be applied to the AC electrode materials. Here, we report on the investigation of zinc oxide (ZnO) coating strategy in terms of different pulse times of precursors, ALD cycles, and deposition temperatures to ensure high electrical conductivity and capacitance retention without blocking the micropores of the AC electrode. Crystalline ZnO phase with its optimal forming condition is obtained preferably using a longer precursor pulse time. Supercapacitors comprising AC electrodes coated with 20 cycles of ALD ZnO at 70 °C and operated in TEABF4/acetonitrile organic electrolyte show a specific capacitance of 23.13 F g-1 at 5 mA cm-2 and enhanced capacitance retention at 3.2 V, which well exceeds the normal working voltage of a commercial EDLC product (2.7 V). This work delivers an additional feasible approach of using ZnO ALD modification of AC materials, enhancing and promoting stable EDLC cells under high working voltages.

Entities:  

Keywords:  atomic layer deposition; high voltage; porous activated carbon; supercapacitors; zinc oxide

Year:  2021        PMID: 34299463     DOI: 10.3390/molecules26144188

Source DB:  PubMed          Journal:  Molecules        ISSN: 1420-3049            Impact factor:   4.411


  1 in total

1.  Dielectric Properties Investigation of Metal-Insulator-Metal (MIM) Capacitors.

Authors:  Li Xiong; Jin Hu; Zhao Yang; Xianglin Li; Hang Zhang; Guanhua Zhang
Journal:  Molecules       Date:  2022-06-20       Impact factor: 4.927

  1 in total

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