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  • The Electrochemical Society  (2)
  • Cojocaru, Paula  (2)
  • 2010-2014  (2)
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  • The Electrochemical Society  (2)
Language
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  • 2010-2014  (2)
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  • 1
    Online Resource
    Online Resource
    The Electrochemical Society ; 2014
    In:  ECS Meeting Abstracts Vol. MA2014-02, No. 5 ( 2014-08-05), p. 364-364
    In: ECS Meeting Abstracts, The Electrochemical Society, Vol. MA2014-02, No. 5 ( 2014-08-05), p. 364-364
    Abstract: With Lithium-ion battery production increasing every year, a lot of efforts are involved in research and development of new advanced materials 1 capable of addressing the challenges that arise from the most interesting applications , such as hybrid electric vehicles (HEVs). In this work, the electroless metallization technique has been used to obtain a coating on the surface of active material particles used in the preparation of cathodes and anodes for Li-ion batteries. One of the most promising candidates in the field of energy storage is the olivine-type LiFePO 4 (LFP). This particular material, which was first proposed by Padhi et al. 2 , is characterized by high energy density, low cost and chemical stability. However, this material is presenting a major drawback in its low electronic conductivity due to its intrinsic resistance, and several routes are being investigated to mitigate this issue. Most common approaches are applying a Carbon coating on the surface of LFP 3–5 , reduce particle size 6 and particles doping 7 . In this work, copper-based coating has been applied on LFP particles in order to enhance its electronic conductivity and eventually to increase the resistance to Fe dissolution during cycling, which is recognized as one of the main causes of capacity fading during cycling 8–10 . The coating has been obtained with autocatalytic deposition, with a two-step process: (1) Pd-based particles activation and (2) copper plating through deposition bath containing copper ions and a reducing agent that allows the reduction of metal ions from the solution to the surface of the particles. Positive electrodes have been prepared using PVDF latex as polymeric binder. The resulting cathodes show improved electrical conductivity. Electrochemical characterization has been carried out to assess the nature of the coating and its impact on the performances of the electrode in working conditions. Acknowledgments: This work has been financed with the contribution of the LIFE financial instrument of the European Community. Project n° LIFE12 ENV IT 000712 LIFE+ GLEE. References: 1. B. Scrosati and J. Garche, Journal of Power Sources , 195 , 2419–2430 (2010) 2. A. K. Padhi, K. S. Nanjundaswamy, and J. B. Goodenough, Journal of Electrochemical Society , 144 , 1188–1194 (1997). 3. H. Huang, S.-C. Yin, and L. F. Nazar, Electrochemical and Solid-State Letters , 4 , A170 (2001) 4. K. Amine, J. Liu, and I. Belharouak, Electrochemistry Communications , 7 , 669–673 (2005) 5. C.-K. Park, S.-B. Park, S.-H. Oh, H. Jang, and W.-I. Cho, Bulletin of the Korean Chemical Society , 32 , 836–840 (2011) 6. C. Delacourt, P. Poizot, S. Levasseur, and C. Masquelier, Electrochemical and Solid-State Letters , 9 , A352 (2006) 7. T.-F. Yi et al., Ionics , 18 , 529–539 (2012) 8. W. Porcher, P. Moreau, B. Lestriez, S. Jouanneau, and D. Guyomard, Electrochemical and Solid-State Letters , 11 , A4 (2008) 9. K. Zaghib et al., Journal of Power Sources , 185 , 698–710 (2008) 10. L. Castro et al., Journal of The Electrochemical Society , 159 , A357 (2012)
    Type of Medium: Online Resource
    ISSN: 2151-2043
    Language: Unknown
    Publisher: The Electrochemical Society
    Publication Date: 2014
    detail.hit.zdb_id: 2438749-6
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  • 2
    Online Resource
    Online Resource
    The Electrochemical Society ; 2014
    In:  ECS Meeting Abstracts Vol. MA2014-04, No. 2 ( 2014-06-10), p. 431-431
    In: ECS Meeting Abstracts, The Electrochemical Society, Vol. MA2014-04, No. 2 ( 2014-06-10), p. 431-431
    Abstract: Silicon is a material that has gained particular interest for the application as anode active material in lithium ion batteries, thanks to its unique reversible lithium insertion capability, which can lead to very high values of specific capacity. However, the main drawback that prevented the spreading of this material in industrial application is its structural instability upon lithium insertion cycling, and different solution have been proposed to address this issue 1 , 2 . The very high volume variation that occurs to silicon during cycling leads to difficulty to establish a continuative electrical contact between Si particles and the rest of the electrode. The approach developed in this work is to apply a nanostructured metallic coating to the Si particles, helping to overcome the continuous stresses during cycling and maintaining electrical contact. In this work, two different metallization techniques have been tested. The presence and composition of the coating on the surface of the particles is confirmed by SEM/EDX and XRD analysis. Anodes containing at least 20%wt Si have been manufactured to perform the electrochemical characterization and to assess the cycling behavior. Coated particles show enhanced structural stability upon cycling, leading to improved cycling efficiency and cycle life. Specific capacity values around 1000 mAh/g are achieved with a 40% increase with respect to pristine Si. References: 1. C. K. Chan et al., Nature nanotechnology , 3 , 31–35 (2008). 2. B. A. Boukamp, Journal of The Electrochemical Society , 128 , 725 (1981).
    Type of Medium: Online Resource
    ISSN: 2151-2043
    Language: Unknown
    Publisher: The Electrochemical Society
    Publication Date: 2014
    detail.hit.zdb_id: 2438749-6
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
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