Publication | Open Access
Spatially Resolving Lithiation in Silicon–Graphite Composite Electrodes via in Situ High-Energy X-ray Diffraction Computed Tomography
110
Citations
59
References
2019
Year
EngineeringMicroscopyChemistryX-ray ImagingChemical EngineeringNanoengineeringElectron MicroscopySpatial ResolutionMaterials ScienceBattery Electrode MaterialsCrystalline DefectsSilicon–graphite Composite ElectrodesLithium-ion BatteryLithium-ion BatteriesAdvanced Electrode MaterialMicroanalysisEnergy StorageLi-ion ElectrodesSolid-state BatteryElectrochemistryLi-ion Battery MaterialsX-ray DiffractionApplied PhysicsHigh-speed XrdGrapheneElectrochemical Energy StorageBatteriesAnode Materials
Optimizing the chemical and morphological parameters of lithium-ion (Li-ion) electrodes is extremely challenging, due in part to the absence of techniques to construct spatial and temporal descriptions of chemical and morphological heterogeneities. We present the first demonstration of combined high-speed X-ray diffraction (XRD) and XRD computed tomography (XRD-CT) to probe, in 3D, crystallographic heterogeneities within Li-ion electrodes with a spatial resolution of 1 μm. The local charge-transfer mechanism within and between individual particles was investigated in a silicon(Si)−graphite composite electrode. High-speed XRD revealed charge balancing kinetics between the graphite and Si during the minutes following the transition from operation to open circuit. Subparticle lithiation heterogeneities in both Si and graphite were observed using XRD-CT, where the core and shell structures were segmented, and their respective diffraction patterns were characterized.
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