Thermodynamic Limits of Energy Harvesting from Outgoing Thermal Radiation
arXiv:1710.02617 · doi:10.1073/pnas.1717595115
Abstract
We derive the thermodynamic limits of harvesting power from the outgoing thermal radiation from the ambient to the cold outer space. The derivations are based on a duality relation between thermal engines that harvest solar radiation and those that harvest outgoing thermal radiation. In particular, we derive the ultimate limit for harvesting outgoing thermal radiation, which is analogous to the Landersberg limit for solar energy harvesting, and show that the ultimate limit far exceeds what was previously thought to be possible. As an extension of our work, we also derive the ultimate limit of efficiency of thermophotovoltatic systems.
6 figures
References in corpus (2)
Cited by in corpus (14)
- Transforming heat transfer with thermal metamaterials and devices
- Spectral self-adaptive absorber/emitter for harvesting energy from the sun and outer space
- Maximal nighttime electrical power generation via optimal radiative cooling
- Modeling and optimization of radiative cooling based thermoelectric generators
- Broadening near-field emission for performance enhancement in thermophotovoltaics
- Observation of Strong Nonreciprocal Thermal Emission
- Solar Thermoradiative-Photovoltaic Energy Conversion
- Thermodynamic performance bounds for radiative heat engines
- Flow of Energy and Information in Molecular Machines
- Quantum nonlinear mixing of thermal photons to surpass the blackbody limit
- Information Arbitrage in Bipartite Heat Engines
- Graded nanocomposite metamaterials for a double-sided radiative cooling architecture with a record breaking cooling power density
- Efficiency of negative-illumination photovoltaic energy conversion
- Where and how is entropy generated in solar energy conversion systems?