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A Rational Biphasic Tailoring Strategy Enabling High‐Performance Layered Cathodes for Sodium‐Ion Batteries
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Citations
44
References
2022
Year
Abstract LayeredEngineeringSodium‐ion BatteriesChemistryChemical EngineeringSodium BatteryRational BiphasicSodium-ion BatteriesMaterials ScienceBattery Electrode MaterialsAdvanced Electrode MaterialLithium-ion BatteriesEnergy StorageElectrochemistryLi-ion Battery MaterialsCathode MaterialsElectrochemical Energy StorageBatteriesFunctional Materials
Abstract Layered oxide cathodes usually exhibit high compositional diversity, thus providing controllable electrochemical performance for Na‐ion batteries. These abundant components lead to complicated structural chemistry, closely affecting the stacking preference, phase transition and Na + kinetics. With this perspective, we explore the thermodynamically stable phase diagram of various P2/O3 composites based on a rational biphasic tailoring strategy. Then a specific P2/O3 composite is investigated and compared with its monophasic counterparts. A highly reversible structural evolution of P2/O3–P2/O3/P3–P2/P3–P2/Z/O3′–Z/O3′ based on the Ni 2+ /Ni 3.5+ , Fe 3+ /Fe 4+ and Mn 3.8+ /Mn 4+ redox couples upon sequential Na extraction/insertion is revealed. The reduced structural strain at the phase boundary alleviates the phase transition and decreases the lattice mismatch during cycling, endowing the biphasic electrode a large reversible capacity of 144 mAh g −1 with the energy density approaching 514 Wh kg −1 .
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