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Solar Thermoradiative-Photovoltaic Energy Conversion

Eric J. Tervo, William A. Callahan, Eric S. Toberer, Myles A. Steiner, Andrew J. Ferguson

2020Cell Reports Physical Science27 citationsDOIOpen Access PDF

Abstract

A continuous supply of renewable energy requires intermittent sources to be paired with storage. Thermal storage is an excellent match for solar energy, but concentrating solar power plants must use high optical concentrations and large plants to be cost competitive. Here, we propose an alternative, solid-state heat engine for solar-thermal conversion consisting of a solar absorber, a thermoradiative cell, and a photovoltaic cell. Heat from the solar absorber or thermal storage drives radiative recombination current in the thermoradiative cell, and its emitted light is used by the photovoltaic cell. Based on the principle of detailed balance, we calculate a limiting solar conversion efficiency of 85% for fully concentrated sunlight and 45% for one sun with an absorber and single-junction cells of equal areas. Solar thermoradiative-photovoltaic systems outperform similar solar thermophotovoltaic converters for low band gaps and practical absorber temperatures, and for a realistic device, this improvement can be up to 7.9% (absolute).

Topics & Concepts

Photovoltaic systemPhotovoltaic thermal hybrid solar collectorSolar energyThermophotovoltaicRenewable energySolar mirrorThermal energy storageThermalMaterials scienceEnergy transformationSolar air conditioningEnergy conversion efficiencySolar cableEnvironmental scienceSolar cell efficiencySolar gainThermal energyElectricity generationSolar powerEnergy storageOptoelectronicsPhotovoltaicsPassive solar building designLimitingNuclear engineeringConvertersEngineering physicsConcentrated solar powerOpticsPower (physics)Nanofluids in solar collectorsSunlightRadiative transferSolar simulatorSolar cellThermal Radiation and Cooling TechnologiesSolar Thermal and Photovoltaic Systemssolar cell performance optimization
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