Publication | Closed Access
Boosted Charge Transfer in SnS/SnO<sub>2</sub> Heterostructures: Toward High Rate Capability for Sodium‐Ion Batteries
741
Citations
34
References
2016
Year
EngineeringCharge TransferSodium‐ion BatteriesChemistryCharge TransportEnhanced Charge-transfer CapabilityNanoelectronicsUltrafine Sns/sno2 HeterostructuresSodium BatteryCharge Carrier TransportSpecific Charge-transfer KineticsSodium-ion BatteriesMaterials ScienceElectrical EngineeringBattery Electrode MaterialsNanotechnologyOxide ElectronicsAdvanced Electrode MaterialEnergy StorageElectrochemistryElectric BatteryLi-ion Battery MaterialsApplied PhysicsElectrochemical Energy StorageMultilayer HeterostructuresBatteries
Constructing heterostructures can endow materials with fascinating performance in high-speed electronics, optoelectronics, and other applications owing to the built-in charge-transfer driving force, which is of benefit to the specific charge-transfer kinetics. Rational design and controllable synthesis of nano-heterostructure anode materials with high-rate performance, however, still remains a great challenge. Herein, ultrafine SnS/SnO2 heterostructures were successfully fabricated and showed enhanced charge-transfer capability. The mobility enhancement is attributed to the interface effect of heterostructures, which induces an electric field within the nanocrystals, giving them much lower ion-diffusion resistance and facilitating interfacial electron transport.
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