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Chitosan assisted synthesis of LiFePO4/Graphene/C composite and its electrochemical performance

Chitosan assisted synthesis of LiFePO4/Graphene/C composite and its electrochemical performance

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LiFePO4/graphene/C composite was prepared using chitosan (CS) and graphene oxide (GO) as carbon sources via a facile solidstate method. CS can bond with GO through electrostatic force between amino group on CS and carboxy group on GO. Withhigh temperature treatment, GO can be reduced to graphene and CS can be decomposed into carbon. By adding chitosan,severe agglomeration of graphene can be prevented. As a result, a continuous conductive framework was formed. The goodconductivity facilitates electron migration, contributing to excellent electrochemical performance especially the high-rateperformance. Consequently, the composite LiFePO4/graphene/C exhibited higher initial discharge capacity of 145.2 mAh • g−1atthe low rate of 0.1 C and retained 62.6 mAh • g−1at high rate of 10 C, while the LiFePO4 merely coated with graphene (LFP/G) was 125.9 mAh • g−1(0.1 C) and 6.5 mAh • g−1(10 C), respectively.

LiFePO4/graphene/C composite was prepared using chitosan (CS) and graphene oxide (GO) as carbon sources via a facile solidstate method. CS can bond with GO through electrostatic force between amino group on CS and carboxy group on GO. Withhigh temperature treatment, GO can be reduced to graphene and CS can be decomposed into carbon. By adding chitosan,severe agglomeration of graphene can be prevented. As a result, a continuous conductive framework was formed. The goodconductivity facilitates electron migration, contributing to excellent electrochemical performance especially the high-rateperformance. Consequently, the composite LiFePO4/graphene/C exhibited higher initial discharge capacity of 145.2 mAh • g−1atthe low rate of 0.1 C and retained 62.6 mAh • g−1at high rate of 10 C, while the LiFePO4 merely coated with graphene (LFP/G) was 125.9 mAh • g−1(0.1 C) and 6.5 mAh • g−1(10 C), respectively.

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