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Fe 2 O 3 /MoO 3 @NG Heterostructure Enables High Pseudocapacitance and Fast Electrochemical Reaction Kinetics for Lithium-Ion Batteries.

Juan DingRui ShengYue ZhangYudai HuangWenhua ChengZhenjie LiuXingchao WangYong GuoJiulin WangDianzeng JiaXincun TangLei Wang
Published in: ACS applied materials & interfaces (2022)
Transition metal oxides (TMOs) hold great potential for lithium-ion batteries (LIBs) on account of the high theoretical capacity. Unfortunately, the unfavorable volume expansion and low intrinsic electronic conductivity of TMOs lead to irreversible structural degradation, disordered particle agglomeration, and sluggish electrochemical reaction kinetics, which result in perishing rate capability and long-term stability. This work reports an Fe 2 O 3 /MoO 3 @NG heterostructure composite for LIBs through the uniform growth of Fe 2 O 3 /MoO 3 heterostructure quantum dots (HQDs) on the N-doped rGO (NG). Due to the synergistic effects of the "couple tree"-type heterostructures constructed by Fe 2 O 3 and MoO 3 with NG, Fe 2 O 3 /MoO 3 @NG delivers a prominent rate performance (322 mA h g -1 at 20 A g -1 , 5.0 times higher than that of Fe 2 O 3 @NG) and long-term cycle stability (433.5 mA h g -1 after 1700 cycles at 10 A g -1 ). Theoretical calculations elucidate that the strong covalent Fe-O-Mo, Mo-N, and Fe-N bonds weaken the diffusion energy barrier and promote the Li + -ion reaction to Fe 2 O 3 /MoO 3 @NG, thereby facilitating the structural stability, pseudocapacitance contribution, and electrochemical reaction kinetics. This work may provide a feasible strategy to promote the practical application of TMO-based LIBs.
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