A facile precursor route towards the synthesis of Fe 1- x S@NC-rGO composite anode materials for high-performance lithium-ion batteries.
Guanghao ZhanRuibo YanWenhua LiaoQianqian HuXiao-Ying HuangPublished in: Dalton transactions (Cambridge, England : 2003) (2023)
Iron-based sulfides are considered promising anode materials for lithium-ion batteries (LIBs) due to their low cost and high theoretical specific capacities. However, low conductivity and dissolution of lithium polysulfides during the reaction hamper their practical applications. Herein, we firstly synthesized N-doped carbon-coated Fe 1- x S (Fe 1- x S@NC) sheets through vacuum pyrolysis of the precursor Fe 1- x S(en) 0.5 (en = ethylenediamine). Then Fe 1- x S@NC-rGO composites (rGO = reduced graphene oxide) were prepared in which the Fe 1- x S@NC sheets were anchored on the rGO. The performance of the composites as an anode material for LIBs has been investigated. It is found that coating N-doped C on Fe 1- x S surfaces can improve the surface conductivity and electrochemical kinetics of Fe 1- x S, which is beneficial for the conversion between lithium polysulfides and Fe 1- x S. In addition, the coated N-doped C on the Fe 1- x S sheets can serve as a barrier to direct contact between the electrolyte and the material, reducing the dissolution of polysulfides and preventing the loss of active ingredients. More importantly, the double protection of the N-doped C layer and the flexible rGO substrate minimizes the structural damage caused by the cyclic expansion of Fe 1- x S@NC-rGO. As expected, Fe 1- x S@NC-rGO exhibits good rate performance with a reversible capacity of 939.5 mA h g -1 after 1690 cycles at a current density of 1.0 A g -1 , along with outstanding charge and discharge performance and excellent long-term cycling stability. This work shows that the introduction of NC coating and the rGO matrix into Fe 1- x S would synergistically enhance the performance of Fe 1- x S for LIBs and highlights the effectiveness of the synthetic strategy for double carbon-based materials-protected sulfides in developing superior LIB electrodes.