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May 1, 2022Cell Reports Physical Science88 citationsOpen Access

MXene-based film electrode and all-round hydrogel electrolyte for flexible all-solid supercapacitor with extremely low working temperature

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JYJuanjuan YinKWKuo WeiJZJiaxin Zhang

Key Points

  • This research aims to develop a flexible all-solid supercapacitor that operates under extreme temperatures and mechanical deformations.
  • Designed MXene/carboxymethyl cellulose film electrode with high conductivity and flexibility
  • Utilized PVA/LiCl hydrogel electrolyte with antifreezing properties and exceptional mechanical characteristics
  • Tested supercapacitor performance under various mechanical stresses and at temperatures as low as -40°C.
  • Achieved specific capacitance of 113.13 mF cm−2 with retention of ∼95% under mechanical deformations
  • Maintained electrochemical stability at −40°C during severe deformations
  • Electrodes showed mechanical flexibility of 12.7 MPa at 5.9% strain and conductivity of 267 S/cm.

Abstract

The fabrication of a flexible all-solid supercapacitor able to work under various deformations, even under extreme conditions, remains challenging because of the rigidity of electrodes, the freezing of gel electrolytes, and interfacial contact problems. Here, we report a flexible supercapacitor with excellent mechanical deformation and ultra-low temperature tolerance assembled by using the designed MXene/carboxymethyl cellulose film electrode and all-round polyvinyl alcohol/LiCl (PVA/LiCl) hydrogel electrolyte. The supercapacitor combines mechanically flexible (12.7 MPa at 5.9% strain) and highly conductive (267 S/cm) electrodes with the PVA/LiCl hydrogel electrolyte with high ion conductivity, excellent mechanical properties, self-adhesion, and antifreezing ability. As a result, the assembled supercapacitor exhibits a high specific capacitance (113.13 mF cm−2) with a retention of ∼95% under mechanical deformations, and more importantly, the electrochemical stability can be maintained even at −40°C when subjected to severe deformations. This work offers an option to design flexible supercapacitors as environment-adaptable energy-storage devices.

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Cite This Study

Yin et al. (2022) studied this question.

synapsesocial.com/papers/6a03a14c5fd9143e45855ddbhttps://doi.org/10.1016/j.xcrp.2022.100893
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