Publication | Closed Access
Tin Oxide with Controlled Morphology and Crystallinity by Atomic Layer Deposition onto Graphene Nanosheets for Enhanced Lithium Storage
417
Citations
82
References
2012
Year
Engineering‐Graphene NanocompositesGraphene NanomeshesChemical EngineeringSodium BatteryAtomic Layer DepositionMaterials ScienceBattery Electrode MaterialsElectrochemical Power SourceAdvanced Electrode MaterialLithium-ion BatteryLithium-ion BatteriesEnergy StorageSolid-state BatteryElectrochemistryTin OxideNanomaterialsLi-ion Battery MaterialsMetal AnodeGrapheneElectrochemical Energy StorageBatteriesGraphene NanosheetsAnode Materials
Abstract As one of the most promising negative electrode materials in lithium‐ion batteries (LIBs), SnO 2 experiences intense investigation due to its high specific capacity and energy density, relative to conventional graphite anodes. In this study, for the first time, atomic layer deposition (ALD) is used to deposit SnO 2 , containing both amorphous and crystalline phases, onto graphene nanosheets (GNS) as anodes for LIBs. The resultant SnO 2 ‐graphene nanocomposites exhibit a sandwich structure, and, when cycled against a lithium counter electrode, demonstrate a promising electrochemical performance. It is demonstrated that the introduction of GNS into the nanocomposites is beneficial for the anodes by increasing their electrical conductivity and releasing strain energy: thus, the nanocomposite electrode materials maintain a high electrical conductivity and flexibility. It is found that the amorphous SnO 2 ‐GNS is more effective than the crystalline SnO 2 ‐GNS in overcoming electrochemical and mechanical degradation; this observation is consistent with the intrinsically isotropic nature of the amorphous SnO 2 , which can mitigate the large volume changes associated with charge/discharge processes. It is observed that after 150 charge/discharge cycles, 793 mA h g −1 is achieved. Moreover, a higher coulombic efficiency is obtained for the amorphous SnO 2 ‐GNS composite anode. This study provides an approach to fabricate novel anode materials and clarifies the influence of SnO 2 phases on the electrochemical performance of LIBs.
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