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独立式多壁碳纳米管-磷酸铁锂薄片作为锂离子电池阴极的性能优化以提高比容量

Performance optimization of freestanding MWCNT-LiFePO sheets as cathodes for improved specific capacity of lithium-ion batteries.

作者信息

Susantyoko Rahmat Agung, Alkindi Tawaddod Saif, Kanagaraj Amarsingh Bhabu, An Boohyun, Alshibli Hamda, Choi Daniel, AlDahmani Sultan, Fadaq Hamed, Almheiri Saif

机构信息

Department of Mechanical Engineering, Khalifa University of Science and Technology, Masdar Institute Masdar City P. O. Box 54224 Abu Dhabi United Arab Emirates

United Arab Emirates Space Agency, Space Missions' Science and Technology Directorate P. O. Box: 7133 Abu Dhabi United Arab Emirates.

出版信息

RSC Adv. 2018 May 4;8(30):16566-16573. doi: 10.1039/c8ra01461b. eCollection 2018 May 3.

Abstract

The typical lithium-ion-battery positive electrode of "lithium-iron phosphate (LiFePO) on aluminum foil" contains a relatively large amount of inactive materials of 29 wt% (22 wt% aluminum foil + 7 wt% polymeric binder and graphitic conductor) which limits its maximum specific capacity to 120.7 mA h g (71 wt% LiFePO) instead of 170 mA h g (100 wt% LiFePO). We replaced the aluminum current-collector with a multi-walled carbon nanotube (MWCNT) network. We optimized the specific capacity of the "freestanding MWCNT-LiFePO" positive electrode. Through the optimization of our unique surface-engineered tape-cast fabrication method, we demonstrated the amount of LiFePO active materials can be as high as 90 wt% with a small amount of inactive material of 10 wt% MWCNTs. This translated to a maximum specific capacity of 153 mA h g instead of 120.7 mA h g, which is a significant 26.7% gain in specific capacity compared to conventional cathode design. Experimental data of the freestanding MWCNT-LiFePO at a low discharge rate of 17 mA g show an excellent specific capacity of 144.9 mA h g which is close to its maximum specific capacity of 153 mA h g. Furthermore, the freestanding MWCNT-LiFePO has an excellent specific capacity of 126.7 mA h g after 100 cycles at a relatively high discharge rate of 170 mA g rate.

摘要

典型的“铝箔上的磷酸铁锂(LiFePO)”锂离子电池正极含有相对大量的非活性材料,占29 wt%(22 wt%铝箔 + 7 wt%聚合物粘合剂和石墨导体),这将其最大比容量限制为120.7 mA h g(71 wt% LiFePO),而不是170 mA h g(100 wt% LiFePO)。我们用多壁碳纳米管(MWCNT)网络取代了铝集流体。我们优化了“独立式MWCNT-LiFePO”正极的比容量。通过优化我们独特的表面工程流延制造方法,我们证明了LiFePO活性材料的量可以高达90 wt%,非活性材料仅为10 wt%的MWCNT。这使得最大比容量达到153 mA h g,而不是120.7 mA h g,与传统阴极设计相比,比容量显著提高了26.7%。独立式MWCNT-LiFePO在17 mA g的低放电率下的实验数据显示出优异的比容量,为144.9 mA h g,接近其153 mA h g的最大比容量。此外,独立式MWCNT-LiFePO在170 mA g的相对高放电率下经过100次循环后,仍具有126.7 mA h g的优异比容量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3dd3/9081850/b6630ca910df/c8ra01461b-f1.jpg

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