This review focuses on the safety hazards of sodium-ion batteries (SIBs). By systematically decoupling the thermal runaway mechanisms, advances and future directions in high-safety electrolytes are evaluated through four strategic dimensions: fla...
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Electron‐Rich Cobalt Doping Engineered Dipole Moments in Delafossite CuFeO2 Nanosheets for High‐Efficiency Solar Hydrogen Production
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CuFeO2 nanosheets with electron-rich Co sites are designed to enhance the dipole moment and thereby built-in electric field driving charge separation efficiently.
In recent years, p-type CuFeO2 delafossite has attracted considerable interest as a cost-effective H2 evolution photocatalyst. However, the intrinsic alternating CuO2/FeO6 layered architecture creates a high energy barrier for interlayer charge transfer, which causes rapid bulk recombination of photogenerated electron–hole pairs, severely limiting their photocatalytic reactivity. In this study, CuFeO2 nanosheets are designed with electron-rich Co sites, which induced enhancement of dipole moment and thereby built-in electric field driving charge separation efficiently. X-ray photoelectron spectroscopy analysis confirms the oxidation state of cobalt atoms is Co2+, which indicates the electron-rich nature of Co sites. The photoluminescence spectra show that the fluorescence intensity of the CuFeO2 nanosheets with electron-rich Co sites decreases, indicating enhanced charge separation. Further time-resolved surface photovoltage measurement reveals the separation of photoinduced electron–hole pairs within 5.26 μs, followed by surface photoinduced electron accumulation on a microsecond time scale. Density functional theory calculations demonstrate the localized electron rich around Co sites, which promotes a 1.5-fold enhancement in dipole moment (from 2.92 × 10−27 Cm to 4.38 × 10−27 Cm). These electron-rich Co serve as low-barrier active sites (ΔG = 0.185 eV) for H2 evolution. The optimized CuFeO2 nanosheets achieves a H2 evolution rate of 31.58 μmol g−1 h−1, representing a 20.8-fold improvement over pristine CuFeO2.
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