4.7 Article

Improved Electrochemical Performances of Graphene Hybrids Embedded with Silica as the Functional Connection Layer for Supercapacitors

Journal

JOURNAL OF ENERGY STORAGE
Volume 36, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.est.2021.102315

Keywords

Supercapacitor; Porous structure; Graphene; Conducting polymer; Electrode/electrolyte interface

Categories

Funding

  1. NSF of China [21303036, U1802256, 21801055, 51672128, 21773118, 21875107]
  2. Zhejiang Provincial Natural Science Foundation [LY20B020009, LQ20B010007, LQ13B040002]
  3. Key Research and Development Program in Jiangsu Province [BE2018122]
  4. Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD)
  5. State Key Laboratory of Physical Chemistry of Solid Surfaces, Xiamen University [201916]
  6. open fund of Collaborative Innovation Center for fluorosilicon Fine Chemicals and Materials Manufacturing of Zhejiang Province [FSi2019A014]

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The study demonstrates that the SiO2 embedded graphene hybrid is an effective strategy to enhance the overall electrochemical properties of supercapacitors, allowing for better utilization of the electric double layer capacitance of graphene and pseudocapacitance of polyaniline.
Graphene, conducting polymers and their hybrids have more superiority and potential as electrode materials for supercapacitors. Neverthless, graphene encountered challenges to guarantee adequate interactions with conducting polymers while maintaining a high level of naked surface for the permeability with electrolytes. To tackle this challenge, developing functionalized or new structured graphene hybrids and their controllable preparation novel strategy is urgent and a focus strategy. Here, SiO2/graphene/polyaniline (SGP) is fabricated through the cross-dimensional assembling of two-dimensional graphene with zero-dimensional SiO2 and polyaniline successively. SiO2 is chosen as a functional connection layer between electrodes and electrolytes, and between hydrophobic graphene and polyaniline for aqueous supercapacitors. Hydrophilic SiO2 not only enhanced the interfacial interactions and ion exchanges at the electrolyte/electrode interface, but also suppressed the stacking between graphene and polyaniline, and among graphene layers. As a result, both the electric double layer capacitance of graphene and pseudocapacitance of polyaniline are better utilized with the aid of SiO2. SGP shows a capacitance retention of 90% after 3500 cycles and improved electrochemical performances, higher than graphene/polyaniline based on both three-electrode and two-electrode cell configurations. These findings demonstrate that SiO2 embeded graphene hybrids is an effective strategy to promote the overall electrochemical properties for supercapacitors.

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