Spray-Painted Binder-Free SnSe Electrodes for High-Performance Energy-Storage Devices

SnSe nanocrystal electrodes on three‐dimensional (3D) carbon fabric and Au‐coated polyethylene terephthalate (PET) wafer have been prepared by a simple spray‐painting process and were further investigated as binder‐free active‐electrodes for Lithium‐ion batteries (LIBs) and flexible stacked all‐soli...

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Veröffentlicht in:ChemSusChem 2014-01, Vol.7 (1), p.308-313
Hauptverfasser: Wang, Xianfu, Liu, Bin, Xiang, Qingyi, Wang, Qiufan, Hou, Xiaojuan, Chen, Di, Shen, Guozhen
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container_issue 1
container_start_page 308
container_title ChemSusChem
container_volume 7
creator Wang, Xianfu
Liu, Bin
Xiang, Qingyi
Wang, Qiufan
Hou, Xiaojuan
Chen, Di
Shen, Guozhen
description SnSe nanocrystal electrodes on three‐dimensional (3D) carbon fabric and Au‐coated polyethylene terephthalate (PET) wafer have been prepared by a simple spray‐painting process and were further investigated as binder‐free active‐electrodes for Lithium‐ion batteries (LIBs) and flexible stacked all‐solid‐state supercapacitors. The as‐painted SnSe nanocrystals/carbon fabric electrodes exhibit an outstanding capacity of 676 mAh g−1 after 80 cycles at a current density of 200 mA g−1 and a considerable high‐rate capability in lithium storage because of the excellent ion transport from the electrolyte to the active materials and the efficient charge transport between current collector and electrode materials. The binder‐free electrodes also provide a larger electrochemical active surface compared with electrodes containing binders, which leads to the enhanced capacities of energy‐storage devices. A flexible stacked all‐solid‐state supercapacitor based on the SnSe nanocrystals on Au‐coated PET wafers shows high capacitance reversibility with little performance degradation at different current densities after 2200 charge–discharge cycles and even when bent. This allows for many potential applications in facile, cost‐effective, spray‐paintable, and flexible energy‐storage devices. The results indicate that the fabrication of binder‐free electrodes by a spray painting process is an interesting direction for the preparation of high‐performance energy‐storage devices. Spray‐painted binder‐free electrodes: A process for the fabrication of binder‐free electrodes through a facile, low‐cost, and large‐scale spray‐painting process by directly spraying a SnSe nanocrystal ink onto a conductive substrate, such as a 3D carbon fabric or an Au‐coated PET wafer, without any additives and binder is reported. Using these electrodes, an lithium‐ion battery and a supercapacitor are prepared and characterized.
doi_str_mv 10.1002/cssc.201300241
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The as‐painted SnSe nanocrystals/carbon fabric electrodes exhibit an outstanding capacity of 676 mAh g−1 after 80 cycles at a current density of 200 mA g−1 and a considerable high‐rate capability in lithium storage because of the excellent ion transport from the electrolyte to the active materials and the efficient charge transport between current collector and electrode materials. The binder‐free electrodes also provide a larger electrochemical active surface compared with electrodes containing binders, which leads to the enhanced capacities of energy‐storage devices. A flexible stacked all‐solid‐state supercapacitor based on the SnSe nanocrystals on Au‐coated PET wafers shows high capacitance reversibility with little performance degradation at different current densities after 2200 charge–discharge cycles and even when bent. This allows for many potential applications in facile, cost‐effective, spray‐paintable, and flexible energy‐storage devices. The results indicate that the fabrication of binder‐free electrodes by a spray painting process is an interesting direction for the preparation of high‐performance energy‐storage devices. Spray‐painted binder‐free electrodes: A process for the fabrication of binder‐free electrodes through a facile, low‐cost, and large‐scale spray‐painting process by directly spraying a SnSe nanocrystal ink onto a conductive substrate, such as a 3D carbon fabric or an Au‐coated PET wafer, without any additives and binder is reported. 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The as‐painted SnSe nanocrystals/carbon fabric electrodes exhibit an outstanding capacity of 676 mAh g−1 after 80 cycles at a current density of 200 mA g−1 and a considerable high‐rate capability in lithium storage because of the excellent ion transport from the electrolyte to the active materials and the efficient charge transport between current collector and electrode materials. The binder‐free electrodes also provide a larger electrochemical active surface compared with electrodes containing binders, which leads to the enhanced capacities of energy‐storage devices. A flexible stacked all‐solid‐state supercapacitor based on the SnSe nanocrystals on Au‐coated PET wafers shows high capacitance reversibility with little performance degradation at different current densities after 2200 charge–discharge cycles and even when bent. This allows for many potential applications in facile, cost‐effective, spray‐paintable, and flexible energy‐storage devices. 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The as‐painted SnSe nanocrystals/carbon fabric electrodes exhibit an outstanding capacity of 676 mAh g−1 after 80 cycles at a current density of 200 mA g−1 and a considerable high‐rate capability in lithium storage because of the excellent ion transport from the electrolyte to the active materials and the efficient charge transport between current collector and electrode materials. The binder‐free electrodes also provide a larger electrochemical active surface compared with electrodes containing binders, which leads to the enhanced capacities of energy‐storage devices. A flexible stacked all‐solid‐state supercapacitor based on the SnSe nanocrystals on Au‐coated PET wafers shows high capacitance reversibility with little performance degradation at different current densities after 2200 charge–discharge cycles and even when bent. This allows for many potential applications in facile, cost‐effective, spray‐paintable, and flexible energy‐storage devices. 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subjects Carbon - chemistry
Electric Power Supplies
Electrochemistry
Electrodes
energy storage
Gold - chemistry
Lithium
nanocrystals
Nanoparticles - chemistry
Polyethylene terephthalate
Polyethylene Terephthalates - chemistry
selenium
Selenium - chemistry
three dimensional electrodes
tin
Tin - chemistry
title Spray-Painted Binder-Free SnSe Electrodes for High-Performance Energy-Storage Devices
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