4.7 Article

Interconnected graphene nanosheets with confined FeS2/FeS binary nanoparticles as anode material of sodium-ion batteries

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 378, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2019.122168

Keywords

Monodispersed graphene nanosheets; Iron sulfides; Confine effect; Rate performance; Sodium-ion batteries

Funding

  1. National Natural Science Foundation of China [51702191]
  2. Natural Science Foundation of Shanxi Province [201701D221062, 201801D221099]
  3. Scientific and Technological Innovation Programs of High Education Institutions in Shanxi [2017110]
  4. Shanxi 1331 Project Engineering Research Center [PT201807]
  5. Shanxi 1331 Project Key Innovative Research Team

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Metal sulfides/graphene hybrid nanomaterials have drawn tremendous research interest for developing high-performance electrodes of sodium-ion batteries. Nevertheless, the rate performance still should be addressed due to the propensity to pi-pi stacking between graphene nanosheets. In this work, we develop a hybridized 3D network material configuration which is constructed by interconnected monodispersed graphene nanosheets (MGNs) with confined FeS2/FeS hetero-nanoparticles (NPs) as the main active matter through a facile cold quenching-gas phase sulfidation technology. Benefiting from the distinctly wrinkled surface feature, the pi-pi restack between the graphene nanosheets is prevented, and meanwhile these MGN building blocks connect together by overlapping the edge regions to form a penetrative electrode framework with rich multiscale pores. Thus, the FeS2/FeS NPs@ MGN hybrid electrode exhibits greatly enhanced Na-ion transport kinetics and excellent rate capability. Typically, under an ultrahigh current density of 20 A g(-1), the reversible capacity of 251 mAh g(-1) with high capacity retention of 52.7% still can be achieved. In addition, it is found the FeS2/FeS NPs are firmly confined in the wrinkles of the graphene nanosheets even after the repeated sodiation/disodiation processes, which contributes to the favorable structure stability and nearly decay-free cycling performance. A high discharge capacity of 513 mAh g(-1) at 0.1 A g(-1) is well maintained after 100 discharge/charge cycles due to the robust 3D graphene framework and the effective prevention of the active NPs from agglomeration and pulvaration by means of the confinement of graphene nanosheets. Furthermore, the superior confine effect on the suppression of polysulfide shuttling and the loss of active materials is also demonstrated.

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