Development of a water based process for stable conversion cathodes on the basis of FeF3
Development of a water based process for stable conversion cathodes on the basis of FeF3
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DOI:
10.1016/j.jpowsour.2016.02.080
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发表时间:
2016-05
影响因子:
9.2
通讯作者:
A. Pohl;M. Faraz;A. Schröder;M. Baunach;W. Schabel;A. Guda;V. Shapovalov;A. Soldatov;V. Chakravadhanula;C. Kübel;R. Witte;H. Hahn;T. Diemant;R. Behm;H. Emerich;M. Fichtner
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文献类型:
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作者:
A. Pohl;M. Faraz;A. Schröder;M. Baunach;W. Schabel;A. Guda;V. Shapovalov;A. Soldatov;V. Chakravadhanula;C. Kübel;R. Witte;H. Hahn;T. Diemant;R. Behm;H. Emerich;M. Fichtner
A facile water based synthesis method for HTB-FeF3/rGO andr-FeF3/rGO composites was developed using FeF3nanoparticles prepared by ball-milling and aqueous graphene oxide precursor. Electrodes of HTB-FeF3/rGO were cast in ambient air and the calendered electrode shows a stable specific energy of 470 Wh kg−1(210 mA h g−1, 12 mA g−1) after 100 cycles in the range 1.3–4.3 V with very little capacity fading. The good cycle stability is attributed to the intimate contact of FeF3nanoparticles with reduced graphene oxide carbon surrounding. Using a combination of in situ XRD, XAS and ex situ Mössbauer spectroscopy, we show that during discharge of HTB-FeF3/rGO composite Li is intercalated fast into the tunnels of the HTB-FeF3structure up tox= 0.92 Li. The Li intercalation is followed by slow conversion of HTB-LixFeF3to LiF and Fe nanoparticles below 2.0 V. During charge, the LiF and Fe phases are slowly transformed to amorphous FeF2and FeF3phases without reformation of the HTB-FeF3framework structure. At an elevated temperature of 55 °C a much higher specific energy of 780 Wh kg−1was obtained.