Conjugated dicarboxylate anodes for Li-ion batteries

被引:0
|
作者
Armand M. [1 ]
Grugeon S. [1 ]
Vezin H. [2 ]
Laruelle S. [1 ]
Ribière P. [1 ]
Poizot P. [1 ]
Tarascon J.-M. [1 ]
机构
[1] LRCS, Université de Picardie Jules Verne, CNRS (UMR-6007), 80039, Amiens
[2] LCOM, CNRS (UMR-8009), Bat. C4
关键词
D O I
10.1038/nmat2372
中图分类号
学科分类号
摘要
Present Li-ion batteries for portable electronics are based on inorganic electrodes. For upcoming large-scale applications the notion of materials sustainability produced by materials made through eco-efficient processes, such as renewable organic electrodes, is crucial. We here report on two organic salts, Li2C8H4O4 (Li terephthalate) and Li 2C6H4O4(Li trans-trans-muconate), with carboxylate groups conjugated within the molecular core, which are respectively capable of reacting with two and one extra Li per formula unit at potentials of 0.8 and 1.4 V, giving reversible capacities of 300 and 150 mAhg-1. The activity is maintained at 80°C with polyethyleneoxide-based electrolytes. A noteworthy advantage of the Li2C8H4O4 and Li2C6H 4O4 negative electrodes is their enhanced thermal stability over carbon electrodes in 1M LiPF"6 ethylene carbonate-dimethyl carbonate electrolytes, which should result in safer Li-ion cells. Moreover, as bio-inspired materials, both compounds are the metabolites of aromatic hydrocarbon oxidation, and terephthalic acid is available in abundance from the recycling of polyethylene terephthalate. © 2009 Macmillan Publishers Limited. All rights reserved.
引用
收藏
页码:120 / 125
页数:5
相关论文
共 50 条
  • [31] Recent studies on metal oxides as anodes for Li-ion batteries
    Sharma, N
    Rao, GVS
    Chowdari, BVR
    SOLID STATE IONICS: THE SCIENCE AND TECHNOLOGY OF IONS IN MOTION, 2004, : 411 - 424
  • [32] Diffusion kinetics of water in graphite anodes for Li-ion batteries
    Eser, Jochen C.
    Deichmann, Birthe
    Wirsching, Tobias
    Merklein, Lisa
    Mueller, Marcus
    Scharfer, Philip
    Schabel, Wilhelm
    DRYING TECHNOLOGY, 2022, 40 (06) : 1130 - 1145
  • [33] High capacity conversion anodes in Li-ion batteries: A review
    Bhatt, Mahesh Datt
    Lee, Jin Yong
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (21) : 10852 - 10905
  • [34] Conversion chemistries for anodes, cathodes, and separators for Li-ion batteries
    Yushin, Gleb
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
  • [35] Carbon nanospheres grown on graphene as anodes for Li-ion batteries
    Zou, Youlan
    Zhou, Xiangyang
    Yang, Juan
    RSC ADVANCES, 2014, 4 (49) : 25552 - 25555
  • [36] Galactomannan binding agents for silicon anodes in Li-ion batteries
    Dufficy, Martin K.
    Khan, Saad A.
    Fedkiw, Peter S.
    JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (22) : 12023 - 12030
  • [37] Adsorption of Li on single-layer silicene for anodes of Li-ion batteries
    Xu, Sen
    Fan, Xiaofeng
    Liu, Jialin
    Singh, David J.
    Jiang, Qing
    Zheng, Weitao
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2018, 20 (13) : 8887 - 8896
  • [38] Porphyrinic conjugated microporous polymer anode for Li-ion batteries
    Yang, Yang
    Yuan, Jiaxi
    Huang, Senhe
    Chen, Zhenying
    Lu, Chenbao
    Yang, Chongqing
    Zhai, Guangqun
    Zhu, Jinhui
    Zhuang, Xiaodong
    JOURNAL OF POWER SOURCES, 2022, 531
  • [39] Interphase chemistry of Si electrodes used as anodes in Li-ion batteries
    Pereira-Nabais, Catarina
    Swiatowska, Jolanta
    Chagnes, Alexandre
    Ozanam, Francois
    Gohier, Aurelien
    Tran-Van, Pierre
    Cojocaru, Costel-Sorin
    Cassir, Michel
    Marcus, Philippe
    APPLIED SURFACE SCIENCE, 2013, 266 : 5 - 16
  • [40] Challenges in Accommodating Volume Change of Si Anodes for Li-Ion Batteries
    Ko, Minseong
    Chae, Sujong
    Cho, Jaephil
    CHEMELECTROCHEM, 2015, 2 (11): : 1645 - 1651