Literature DB >> 34302441

Wood-Derived, Conductivity and Hierarchical Pore Integrated Thick Electrode Enabling High Areal/Volumetric Energy Density for Hybrid Capacitors.

Feng Wang1, Xiaolin Liu2, Gaigai Duan1, Haoqi Yang3, Jun Young Cheong4, Jiyoung Lee4, Jaewan Ahn4, Qian Zhang5, Shuijian He1, Jingquan Han1, Yan Zhao2,6, Il-Doo Kim4, Shaohua Jiang1.   

Abstract

For the proliferation of the supercapacitor technology, it is essential to attain superior areal and volumetric performance. Nevertheless, maintaining stable areal/volumetric capacitance and rate capability, especially for thick electrodes, remains a fundamental challenge. Here, for the first time, a rationally designed porous monolithic electrode is reported with high thickness of 800 µm (46.74 mg cm-2 , with high areal mass loading of NiCo2 S4 6.9 mg cm-2 ) in which redox-active Ag nanoparticles and NiCo2 S4 nanosheets are sequentially decorated on highly conductive wood-derived carbon (WC) substrates. The hierarchically assembled WC@Ag@NiCo2 S4 electrode exhibits outstanding areal capacitance of 6.09 F cm-2 and long-term stability of 84.5% up to 10 000 cycles, as well as exceptional rate capability at 50 mA cm-2 . The asymmetric cell with an anode of WC@Ag and a cathode of WC@Ag@NiCo2 S4 delivers areal/volumetric energy density of 0.59 mWh cm-2 /3.93 mWh cm-3 , which is much-improved performance compared to those of most reported thick electrodes at the same scale. Theoretical calculations verify that the enhanced performance could be attributed to the decreased adsorption energy of OH- and the down-shifted d-band of Ag atoms, which can accelerate the electron transport and ion transfer.
© 2021 Wiley-VCH GmbH.

Entities:  

Keywords:  areal capacitance; monolithic electrode; pseudo-capacitance; supercapacitors; volumetric energy density

Year:  2021        PMID: 34302441     DOI: 10.1002/smll.202102532

Source DB:  PubMed          Journal:  Small        ISSN: 1613-6810            Impact factor:   13.281


  1 in total

1.  Changes in Chemical and Thermal Properties of Bamboo after Delignification Treatment.

Authors:  Huiling Yu; Chengsheng Gui; Yaohui Ji; Xiaoyan Li; Fei Rao; Weiwei Huan; Luming Li
Journal:  Polymers (Basel)       Date:  2022-06-24       Impact factor: 4.967

  1 in total

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