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POMCPs with Novel Two Water‐Assisted Proton Channels Accommodated by MXenes for Asymmetric Supercapacitors
29
Citations
54
References
2022
Year
To develop high-performance supercapacitors, the negative electrode is at present viewed as one of the most challenging tasks for obtaining the next-generation of energy storage devices. Therefore, in this study, a polyoxometalate-based coordination polymer [Zn(itmb)<sub>3</sub> H<sub>2</sub> O][H<sub>2</sub> SiW<sub>12</sub> O<sub>40</sub> ]·5H<sub>2</sub> O (1) is designed and prepared by a simple hydrothermal method for constructing a high-capacity negative electrode. Polymer 1 has two water-assisted proton channels, which are conducive to enhancing the electrical conductivity and storage capacity. Then, MXene Ti<sub>3</sub> C<sub>2</sub> T<sub>x</sub> is chosen to accommodate coordination polymer 1 as the interlayer spacers to improve the conductivity and cycling stability of 1, while preventing the restacking of MXene. Expectedly, the produced composite electrode 1@Ti<sub>3</sub> C<sub>2</sub> T<sub>x</sub> shows an excellent specific capacitance (1480.1 F g<sup>-1</sup> at 5 A g<sup>-1</sup> ) and high rate performance (a capacity retention of 71.5% from 5 to 20 A g<sup>-1</sup> ). Consequently, an asymmetric supercapacitor device is fabricated using 1@Ti<sub>3</sub> C<sub>2</sub> T<sub>x</sub> as the negative electrode and celtuce leaves-derived carbon paper as the positive electrode, which demonstrates ultrahigh energy density of 32.2 Wh kg<sup>-1</sup> , and power density 2397.5 W kg<sup>-1</sup> , respectively. In addition, the ability to illuminate a red light-emitting diode for several minutes validates its feasibility for practical application.
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