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Facile molten salt synthesis of Cs-MnO2 hollow microflowers for supercapacitor applications
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Document Title
Facile molten salt synthesis of Cs-MnO2 hollow microflowers for supercapacitor applications
Author
Chomkhuntod P., Jiamprasertboon A., Waehayee A., Butburee T., Chanlek N., Yong N., Siritanon T.
Name from Authors Collection
Scopus Author ID
56514975300
Affiliations
School of Chemistry, Institute of Science, Suranaree University of Technology, Nakhon Ratchasima, 30000, Thailand; National Nanotechnology Center, National Science and Technology Development Agency, 111 Thailand Science Park, Pathum Thani, 12120, Thailand; Synchrotron Light Research Institute, Nakhon Ratchasima, 30000, Thailand; Center of Excellent-Advanced Functional Materials, Suranaree University of Technology, Nakhon Ratchasima, 30000, Thailand
Type
Article
Source Title
RSC Advances
ISSN
20462069
Year
2019
Volume
9
Issue
33
Page
19079-19085
Open Access
Gold
Publisher
Royal Society of Chemistry
DOI
10.1039/c9ra02067e
Format
Abstract
A facile molten salt technique is an interesting preparation method as it enables mass production of materials. With the use of CsNO3 salt, Cs-intercalated MnO2 hollow microflowers are obtained in this work. δ-MnO2 with a layered structure, instead of other allotropes with smaller structural cavities, is formed and stabilized by large Cs+ ions. Formation of the hollow microflowers is explained based on the Ostwald ripening process. The salt to starting agent ratio has little effect on the crystal structure and morphologies of the products but does influence the crystallinity, the interlayer distance, and the intercalating Cs+ content. The capacity of Cs+ in the structure and the interlayer distance are maximized when the weight ratio of CsNO3:MnSO4 is 7:1. Cs-MnO2 obtained from this optimum ratio has most suitable crystallinity and interlayer distance, and consequently shows a highest specific capacitance of 155 F g-1 with excellent cycling performance. The obtained specific capacitance is comparable to that of other alkaline-intercalated MnO2, suggesting that Cs-MnO2 could be another interesting candidate for supercapacitor electrodes. © 2019 The Royal Society of Chemistry.
Funding Sponsor
National Science and Technology Development Agency
License
CC BY-NC
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Publication Source
Scopus
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