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SnO2 mesoporous nanostructures serve as battery-type cathode for hybrid supercapacitor with superior electrochemical performance

COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS [2025]
Chunwang Luo, Xianglin Ren, Zheyu Zhang, Gaojuan Wang, Yu Miao, Chunju Xu, Huiyu Chen
ABSTRACT

Herein, the mesoporous tin dioxide (SnO 2 ) electrode materials with large specific surface areas were simply prepared through an initial solvothermal method in a mixed solvent of glycerol, isopropanol, and de-ionized water, along with a post annealing treatment in air. The average size of SnO 2 varied from 1 μm to 0.5 μm by changing the volume ratio of glycerol to isopropanol, and the product was denoted as SnO 2 -5/35 and SnO 2 -20/20, respectively. The electrochemical tests revealed that such SnO 2 electrode materials exhibited battery-type response. The SnO 2 -5/35 delivered the greatest specific capacity of 219.3 C g −1 , higher than 200.4 C g −1 for SnO 2 -20/20 electrode. In the configuration of hybrid supercapacitor (HSC) device, the SnO 2 served as the cathode and activated carbon (AC) was utilized as the anode. The SnO 2 -5/35//AC HSC exhibited an energy density of 33.6 W h kg −1 at the power density of 946.9 W kg −1 . In contrast, the SnO 2 -20/20//AC HSC delivered an inferior specific energy of 28.5 W h kg −1 . Both HSCs showed excellent cyclic performance over 6000 cycles under a high current load of 10 A g −1 . These results indicate that the SnO 2 materials, especially SnO 2 -5/35, holds significant application potential in the field of electrochemical energy storage. Additionally, the current synthesis method can be extended to the preparation of other metal oxides with extraordinary electrochemical property for the practical applications in supercapacitors.

MATERIALS

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