Publication | Open Access
Spectral splitting optimization for high-efficiency solar photovoltaic and thermal power generation
30
Citations
13
References
2016
Year
Entropy Minimization SchemeEngineeringEnergy EfficiencyEnergy ConversionConversion EfficiencyPhotovoltaic DevicesPhotovoltaic SystemPhotovoltaic Power StationPhotovoltaicsEnergy GenerationSpectral Splitting OptimizationSolar Thermal EnergySolar Energy UtilisationElectrical EngineeringSolar PowerThermal Power GenerationComputer EngineeringEnergy ManagementFull Solar SpectrumBuilding-integrated PhotovoltaicsHigh-efficiency Solar Photovoltaic
Utilizing the full solar spectrum is desirable to enhance the conversion efficiency of a solar power generator. In practice, this can be achieved through spectral splitting between multiple converters in parallel. However, it is unclear which wavelength bands should be directed to each converter in order to maximize the efficiency. We developed a model of an ideal hybrid solar converter which utilizes both a single-junction photovoltaic cell and a thermal engine. We determined the limiting efficiencies of this hybrid strategy and the corresponding optimum spectral bandwidth directed to the photovoltaic cell. This optimum width is inversely proportional to the thermal engine efficiency and scales with the bandgap of the photovoltaic cell. This bandwidth was also obtained analytically through an entropy minimization scheme and matches well with our model. We show that the maximum efficiency of the system occurs when it minimizes the spectral entropy generation. This concept can be extended to capture generalized non-idealities to increase the usefulness of this technique for a range of full solar spectrum utilization technologies.
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