Publication | Closed Access
Tailored Surface Structure of LiFePO<sub>4</sub>/C Nanofibers by Phosphidation and Their Electrochemical Superiority for Lithium Rechargeable Batteries
16
Citations
38
References
2014
Year
Surface StructureEngineeringElectrode-electrolyte InterfaceChemistryChemical EngineeringLifepo4 NanofibersPristine Lifepo4/c NanofibersLithium Rechargeable BatteriesTheir Electrochemical SuperiorityMaterials ScienceNoble Li IonBattery Electrode MaterialsAdvanced Electrode MaterialEnergy StorageSolid-state BatteryEnergy MaterialElectrochemistryLi-ion Battery MaterialsNanomaterialsElectrochemical Energy StorageBatteries
We offer a brand new strategy for enhancing Li ion transport at the surface of LiFePO4/C nanofibers through noble Li ion conducting pathways built along reduced carbon webs by phosphorus. Pristine LiFePO4/C nanofibers composed of 1-dimensional (1D) LiFePO4 nanofibers with thick carbon coating layers on the surfaces of the nanofibers were prepared by the electrospinning technique. These dense and thick carbon layers prevented not only electrolyte penetration into the inner LiFePO4 nanofibers but also facile Li ion transport at the electrode/electrolyte interface. In contrast, the existing strong interactions between the carbon and oxygen atoms on the surface of the pristine LiFePO4/C nanofibers were weakened or partly broken by the adhesion of phosphorus, thereby improving Li ion migration through the thick carbon layers on the surfaces of the LiFePO4 nanofibers. As a result, the phosphidated LiFePO4/C nanofibers have a higher initial discharge capacity and a greatly improved rate capability when compared with pristine LiFePO4/C nanofibers. Our findings of high Li ion transport induced by phosphidation can be widely applied to other carbon-coated electrode materials.
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