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Interface-Driven Solar Conversion
1963 - 1994
The period highlights an interface-centric approach to solar-energy conversion, where semiconductor electrodes are integrated with sensitized interfaces and storage-ready architectures to transform sunlight into electricity or chemical fuels. Materials engineering and precise control of surfaces and interfaces propelled improvements in efficiency and durability, with InP/GaAs photocathodes, GaAs surface treatments, and CdSe/CdS junctions delivering robust performance across diverse electrolytes. Solar-fuels research centered water splitting as the core objective, guiding catalyst design and energetics, while thermodynamic accounting and system-level modeling provided quantitative benchmarks for evaluating solar-thermal and electrochemical routes.
• Photoelectrochemical systems unify semiconductor electrodes, sensitized interfaces, and storage-capable architectures to convert solar energy into chemical or electrical energy, as seen in polycrystalline chalcogenide electrodes, sensitized junctions, and water-splitting cells [8], [10], [14], [15], [19].
• Materials engineering and surface/interfacial modification drive higher efficiency and durability of solar energy devices, with InP/GaAs photocathodes, GaAs surface treatments, and CdSe/CdS junctions showing up to double-digit efficiencies in varied electrolytes [4], [6], [16], [17], [18], [19].
• Solar-fuels research references water splitting as a central objective, tying hydrogen production and catalyst design to energy-conversion devices, with MoS2 layer studies and biomimetic approaches informing energetics and kinetics [5], [13], [14], [19], [20].
• Thermodynamic accounting and system-level modelling frame energy-conversion research, quantifying efficiencies and guiding sustainable design across solar-thermal and electrochemical routes, including energy-efficiency analyses, electrochemical energy considerations, and solar-energy strategy [7], [9], [11], [12].
Solar-to-Fuel Hybridization
1995 - 2009
Integrated Solar-Electrochemical Conversion
2010 - 2016
Cocatalytic Hybrid Energy Conversion
2017 - 2024