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Facile Synthesis of the SnTe/SnSe Binary Nanocomposite a Hydrothermal Route for Flexible Solid-state Supercapacitors

Overview
Journal RSC Adv
Specialty Chemistry
Date 2023 Apr 20
PMID 37077269
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Abstract

Environmental degradation and energy shortage are the two biggest problems facing the world right now. Because of the limited supply of non-renewable sources, the production of environment-friendly energy and its storage has gained significant importance. Pseudocapacitors have lately caught the interest of energy specialists due to their greater energy/power density and prolonged cycle life. In this work, binding-free SnTe/SnSe (STSS) electrodes deposited onto Ni foam (NF) as the conductive substrate have been developed by a facile hydrothermal route for supercapacitor applications. Several analytical tools were utilized to study the morphological, structural and textural characteristics. The electrochemical results obtained from a three-electrode system suggest that the STSS electrode material exhibits great specific capacitance ( ) of 1276 F g, specific energy ( ) of 46.45 W h kg and specific power ( ) of 256 W kg @ 1 A g. The results of indicate that the STSS (31.28 mF) has a larger value than those of SnTe (23.22 mF) and SnSe (26.35 mF). The analysis of electrochemical stability indicates that the STSS displays structural stability over 5000 cycles with a maximum capacitance retention of 96%. The Nyquist plot profile displayed a smaller value for STSS (0.89 Ω) than SnSe (1.13 Ω) and SnTe (1.97 Ω). The symmetric behavior of STSS was determined in 2.0 M potassium hydroxide. The results reveal that this material has a specific capacitance of 537.72 F g and specific energy of 78.32 W h kg. These findings suggest that the STSS electrode might serve as a potential candidate for supercapacitors and other energy-saving equipment.

References
1.
Song M, Cheng S, Chen H, Qin W, Nam K, Xu S . Anomalous pseudocapacitive behavior of a nanostructured, mixed-valent manganese oxide film for electrical energy storage. Nano Lett. 2012; 12(7):3483-90. DOI: 10.1021/nl300984y. View

2.
Miao R, Sun C, Li J, Sun Y, Chen Y, Pan J . A facile morphology tunable strategy of Zn-MOF derived hierarchically carbon materials with enhanced supercapacitive performance through the solvent effect. Dalton Trans. 2022; 51(47):18213-18223. DOI: 10.1039/d2dt02624d. View

3.
Yu D, Zhong X, Liu D, Liang Y . The effects of BiO on the selective catalytic reduction of NO by propylene over CoO nanoplates. RSC Adv. 2022; 9(55):32232-32239. PMC: 9072850. DOI: 10.1039/c9ra03956b. View

4.
Hao L, Li X, Zhi L . Carbonaceous electrode materials for supercapacitors. Adv Mater. 2013; 25(28):3899-904. DOI: 10.1002/adma.201301204. View

5.
Vijayakumar S, Nagamuthu S, Muralidharan G . Supercapacitor studies on NiO nanoflakes synthesized through a microwave route. ACS Appl Mater Interfaces. 2013; 5(6):2188-96. DOI: 10.1021/am400012h. View