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Study on boron-containing electrolytes at extra-high temperatures for lithium-ion batteries
Yang, Li1; Wang, Peng1; Zhao, Dongni1; Y., Wei; Y., Han; S., Zeng; C., Wang; S., Li
刊名Sustainable Energy and Fuels
2020-08-01
卷号4期号:8页码:4126-4136
关键词Boron Cathodes Cells Cytology Electrolytes Energy dispersive spectroscopy Ethylene High resolution transmission electron microscopy Iron compounds Lithium compounds Polarization Salts Scanning electron microscopy X ray photoelectron spectroscopy Electrolyte compositions Electrolyte interfaces Energy dispersive X ray spectroscopy High temperature cycling High-temperature electrolyte Impedance characteristics Lithium iron phosphates Organic components
ISSN号2398-4902
DOI10.1039/d0se00529k
英文摘要

Broadening the temperature range of lithium-ion batteries can be achieved by optimizing the composition of lithium salts in the electrolyte, which is currently one of the most popular methods. In this study, we report an extra-high temperature electrolyte by optimizing the proportion of mixed lithium salts (LiBOB and LiBF4) with ethylene carbonate (EC), diethyl carbonate (DEC) and ethyl methyl (EMC) as an equal volume mixture. An extra-high temperature of 75 °C is applied in a half cell with lithium iron phosphate (LFP) as the cathode and a lithium foil as the anode. The cycle stability and rate performance of the cell with various electrolytes based on mixed lithium salts are systematically investigated and a comparison of the polarization and impedance characteristics is conducted as well. The most outstanding electrolyte composition is electrolyte B (0.6 M LiBOB + 0.1 M LiBF4-EC/DEC/EMC). The optimized electrolyte not only maintains good cycle stability (the capacity retention rate is 98% after 80 cycles) and excellent rate performance at the extra-high temperature, but also minimizes the polarization during cycling, which is mainly due to the formation of a dense and smooth cathode electrolyte interface (CEI) film, as observed by scanning electron microscopy (SEM) and transmission electron microscopy (TEM). The CEI film that contains B-O bonds and organic components is systematically analyzed by energy-dispersive X-ray spectroscopy (EDS) and X-ray photoelectron spectroscopy (XPS), which shows that the components aid the extra-high temperature cycling stability of the cell. Our data indicate that the composition of lithium salts in the electrolyte is pivotal to the properties of the CEI film, which largely determines the performance of the cell at extra-high temperatures. The conclusions of this work can contribute significantly to the application of extra-high temperature electrolytes. © 2020 The Royal Society of Chemistry.

WOS研究方向Chemistry ; Energy & Fuels ; Materials Science
语种英语
出版者Royal Society of Chemistry
WOS记录号WOS:000552930600029
内容类型期刊论文
源URL[http://ir.lut.edu.cn/handle/2XXMBERH/115336]  
专题石油化工学院
马克思主义学院
作者单位1.College of Petrochemical Technology, Lanzhou University of Technology, Lanzhou; 730050, China;
2.Gansu Engineering Laboratory of Electrolyte Material for Lithium-ion Battery, Lanzhou; 730050, China
推荐引用方式
GB/T 7714
Yang, Li,Wang, Peng,Zhao, Dongni,et al. Study on boron-containing electrolytes at extra-high temperatures for lithium-ion batteries[J]. Sustainable Energy and Fuels,2020,4(8):4126-4136.
APA Yang, Li.,Wang, Peng.,Zhao, Dongni.,Y., Wei.,Y., Han.,...&S., Li.(2020).Study on boron-containing electrolytes at extra-high temperatures for lithium-ion batteries.Sustainable Energy and Fuels,4(8),4126-4136.
MLA Yang, Li,et al."Study on boron-containing electrolytes at extra-high temperatures for lithium-ion batteries".Sustainable Energy and Fuels 4.8(2020):4126-4136.
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