Moderate-temperature near-field thermophotovoltaic systems with thin-film InSb cells
arXiv:2101.10604
Abstract
Near-field thermophotovoltaic systems functioning at 400900~K based on graphene-hexagonal-boron-nitride heterostructures and thin-film InSb - junctions are investigated theoretically. The performances of two near-field systems with different emitters are examined carefully. One near-field system consists of a graphene-hexagonal-boron-nitride-graphene sandwich structure as the emitter, while the other system has an emitter made of the double graphene-hexagonal-boron-nitride heterostructure. It is shown that both systems exhibit higher output power density and energy efficiency than the near-field system based on mono graphene-hexagonal-boron-nitride heterostructure. The optimal output power density of the former device can reach to , while the optimal energy efficiency can be as large as of the Carnot efficiency. We analyze the underlying physical mechanisms that lead to the excellent performances of the proposed near-field thermophotovoltaic systems. Our results are valuable toward high-performance moderate temperature thermophotovoltaic systems as appealing thermal-to-electric energy conversion (waste heat harvesting) devices.
15 pages, 7 figures
References in corpus (7)
- Optical properties of graphene
- Highly confined low-loss plasmons in graphene-boron nitride heterostructures
- Sub-diffractional, volume-confined polaritons in a natural hyperbolic material: hexagonal boron nitride
- Tunable light-matter interaction and the role of hyperbolicity in graphene-hBN system
- Near-field heat transfer between graphene/hBN multilayers
- Ideal near-field thermophotovoltaic cells
- Near-Field Radiative Heat Transfer between Metamaterials coated with Silicon Carbide Film