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Effect of fluoroethylene carbonate on electrochemical battery performance and the surface chemistry of amorphous MoO_2 lithium-ion secondary battery negative electrodes

机译:碳酸氟亚乙酯对电化学电池性能和非晶MoO_2锂离子二次电池负极表面化学的影响

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摘要

The effect of fluoroethylene carbonate (FEC) as a co-solvent on electrochemical battery performance and surface chemistry was investigated at nano-sized amorphous molybdenum dioxide (a-MoO_2) lithiumion secondary battery negative electrodes. The capacity retention was enhanced as a function of the FEC concentration up to approximately 7% after 50 cycles. The surface characterization conducted by EIS, FESEM, FT-IR, and XPS revealed that the improved battery performance of the a-MoO_2 was attributed to the modification of the surface chemistry depending on the FEC content. An ion conductive, mechanically and electrochemically stable, and thin solid electrolyte interphase (SEI) was developed as a result of successive reductive decomposition of FEC at the a-MoO_2 surface. The superior film properties originated from the FEC-reduced products that were rich in polycarbonates and LiF. Based on the findings, SEI formation mechanisms for ethylene carbonate (EC)-derived, FEC-derived, and EC-/FEC-co-derived SEI were also developed. Identification of the mechanisms proposed herein could provide a good understanding of the FEC effect in modifying the surface reaction of typical lithium-ion secondary battery negative electrodes.
机译:在纳米级非晶态二氧化钼(a-MoO_2)锂离子二次电池负极上研究了碳酸氟乙烯酯(FEC)作为助溶剂对电化学电池性能和表面化学的影响。 50个循环后,容量保持率随FEC浓度的增加而提高,最高可达7%。由EIS,FESEM,FT-IR和XPS进行的表面表征表明,a-MoO_2电池性能的改善归因于表面化学性质的改变,具体取决于FEC含量。由于在a-MoO_2表面上FEC的连续还原分解,开发了一种离子导电,机械和电化学稳定且稀薄的固体电解质中间相(SEI)。优异的薄膜性能源自FEC减少的产品,这些产品富含聚碳酸酯和LiF。基于这些发现,还开发了碳酸亚乙酯(EC),FEC和EC- / FEC共同衍生的SEI的SEI形成机理。对本文提出的机理的鉴定可以很好地理解FEC在改善典型锂离子二次电池负极表面反应中的作用。

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