Interface Chemistry Engineering for Stable Cycling of Reduced GO/SnO sub(2) Nanocomposites for Lithium Ion Battery

From the whole anode electrode of view, we report in this work a system-level strategy of fabrication of reduced graphene oxide (RGO)/SnO sub(2) composite-based anode for lithium ion battery (LIB) to enhance the capacity and cyclic performance of SnO sub(2)-based electrode materials. RGO/SnO sub(2)...

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Veröffentlicht in:Nano letters 2013-04, Vol.13 (4), p.1711-1716-1711-1716
Hauptverfasser: Wang, Lei, Wang, Dong, Dong, Zhihui, Zhang, Fengxing, Jin, Jian
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Sprache:eng
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Zusammenfassung:From the whole anode electrode of view, we report in this work a system-level strategy of fabrication of reduced graphene oxide (RGO)/SnO sub(2) composite-based anode for lithium ion battery (LIB) to enhance the capacity and cyclic performance of SnO sub(2)-based electrode materials. RGO/SnO sub(2) composite was first coated by a nanothick polydopamine (PD) layer and the PD-coated RGO/SnO sub(2) composite was then cross-linked with poly(acrylic acid) (PAA) that was used as a binder to accomplish a whole anode electrode. The cross-link reaction between PAA and PD produced a robust network in the anode system to stabilize the whole anode during cycling. As a result, the designed anode exhibits an outstanding energy capacity up to 718 mAh/g at current density of 100 mA/g after 200 cycles and a good rate performance of 811, 700, 641, and 512 mAh/g at current density of 100, 250, 500, and 1000 mA/g, respectively. Fourier transform IR spectra confirm the formation of cross-link reaction and the stability of the robust network after long-term cycling. Our results indicate the importance of designing interfaces in anode system on achieving improved performance of electrode of LIBs.
ISSN:1530-6984
1530-6992
DOI:10.1021/nl400269d