Exploration of low-cost microporous Fe(Ⅲ)-based organic framework as anode material for potassium-ion batteries
Potassium-ion (K-ion) batteries were regarded as the promising candidate for increasingly large-scale energy storage system, mainly due to the abundant resources, low standard potential as well as fast ion transport capability. Exploring suitable anode materials that can fully accommodate the large...
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Veröffentlicht in: | Journal of alloys and compounds 2020-07, Vol.830, p.154714, Article 154714 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Potassium-ion (K-ion) batteries were regarded as the promising candidate for increasingly large-scale energy storage system, mainly due to the abundant resources, low standard potential as well as fast ion transport capability. Exploring suitable anode materials that can fully accommodate the large ionic radius of K+ have been a research hotspot. Herein, a low-cost iron based metal organic framework, namely MOF-235 was initially proposed as newly anode material for K-ion batteries. After in-situ composited with multiwall-carbon tubes (MCNTs), the as-prepared MOF-235/MCNTs composite can show a specific capacity of 132 mAh g−1 over 200 cycles with remarkable rate property. The reaction mechanism was further investigated by XRD, FT-IR and XPS analysis. The superior K-storage behavior were ascribed to the large surface area of MOF-235, the enhanced electronic conductivity and the organic terephthalate moiety as the active site. These results are of significant to explore advanced anode materials for K-ion batteries.
We reported a low-cost Fe-based MOF (MOF-235) with special large surface area, micro-porous structure and suitable potential (0.4 V) as an anode material for K-ion batteries with remarkable electrochemical property. [Display omitted]
•A low-cost Fe-based metal-organic framework MOF-235 was initially reported in K-ion battery.•The as-prepared MOF-235/MCNTs composite can deliver 132 mAh g−1 over 200 cycles.•The K-storage mechanism of MOF-235 was further investigated by XRD, FT-IR and XPS analysis. |
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ISSN: | 0925-8388 1873-4669 |
DOI: | 10.1016/j.jallcom.2020.154714 |