Reversible Iron Oxyfluoride (FeOF)‐Graphene Composites as Sustainable Cathodes for High Energy Density Lithium Batteries

Author:

Liu Yadong1,Yu Yikang12ORCID,Yang Fan12,Zhu Guangqi1,Yu Kang3,Kou Ronghui4,Sun Chengjun4,Liu Yuzi5,Xu Jiayi6,Liu Cong6,Li Chenzhao12,Liu Tianwei1,Ren Yang4,Lu Wenquan6,Ferreira Rafael78,Ferreira Paulo378,Zhang Zhengcheng6,Xie Jian1ORCID

Affiliation:

1. Department of Mechanical and Energy Engineering and Integrated Nanosystems Development Institute Purdue School of Engineering and Technology Indiana University‐Purdue University Indianapolis Indianapolis IN 46202 USA

2. School of Mechanical Engineering Purdue University West Lafayette IN 47907 USA

3. Materials Science and Engineering Program The University of Texas at Austin Austin TX 78712 USA

4. X‐ray Science Division Argonne National Laboratory Lemont IL 60439 USA

5. Center for Nanoscale Materials Argonne National Laboratory 9700 South Cass Avenue Argonne IL 60439 USA

6. Chemical Science and Engineering Division Argonne National Laboratory Lemont IL 60439 USA

7. International Iberian Nanotechnology Laboratory Avda. Mestre José Veiga Braga 4715‐330 Portugal

8. Mechanical Engineering Department and IDMEC Instituto Superior Técnico University of Lisbon Av. Rovisco Pais Lisboa 1049‐001 Portugal

Abstract

AbstractTwo large barriers are impeding the wide implementation of electric vehicles, namely driving‐range and cost, primarily due to the low specific energy and high cost of mono‐valence cathodes used in lithium‐ion batteries. Iron is the ideal element for cathode materials considering its abundance, low cost and toxicity. However, the poor reversibility of (de)lithiation and low electronic conductivity prevent iron‐based high specific energy multi‐valence conversion cathodes from practical applications. In this work, a sustainable FeOF nanocomposite is developed with extraordinary performance. The specific capacity and energy reach 621 mAh g−1 and 1124 Wh kg−1 with more than 100 cycles, which triples the specific capacity, and doubles the specific energy of current mono‐valence intercalation LiCoO2. This is the result of an effective approach, combing the nanostructured FeOF with graphene, realized by making the (de)lithiation reversible by immobilizing FeOF nanoparticles and the discharge products over the graphene surface and providing the interparticle electric conduction. Importantly, it demonstrates that introducing small amount of graphene can create new materials with desired properties, opening a new avenue for altering the (de)lithiation process. Such extraordinary performance represents a significant breakthrough in developing sustainable conversion materials, eventually overcoming the driving range and cost barriers.

Funder

U.S. Department of Energy

Office of Science

Argonne National Laboratory

Fundação para a Ciência e a Tecnologia

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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