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Title: High-efficiency solar thermophotovoltaic system using a nanostructure-based selective emitter

Journal Article · · Solar Energy
 [1]; ORCiD logo [2];  [3]
  1. Univ. of Virginia, Charlottesville, VA (United States); Science Systems and Applications, Inc., Hampton, VA (United States)
  2. Oak Ridge National Lab. (ORNL), Oak Ridge, TN (United States)
  3. Univ. of Virginia, Charlottesville, VA (United States)

Herein, we present the design, fabrication, optimization, and experimental results of a high-efficiency planar solar thermophotovoltaic (STPV) system utilizing a micro-textured absorber and a nanostructure multilayer metal-dielectric coated selective emitter fabricated on a tungsten (W) substrate. Light absorptance of more than 90% was achieved at visible and near-infrared wavelengths using the microtextured absorbing surface. The nanostructure selective emitter consists of two thin-film optical coatings of silicon nitride (Si3N4) and a layer of W in between to increase the surface emissivity in spectral regimes matching the quantum efficiency of the thermophotovoltaic (TPV) cells. Gallium antimonide (GaSb)-based TPV cells are used in our STPV design. The experiment was conducted at different operating temperatures using a high-power continuous wave laser diode stack as a simulated source of concentrated incident radiation. Our experimental setup measured a maximum electrical output power density of 1.71 W/cm2 at 1676 K STPV temperature, and the overall power conversion efficiency of 8.4% after normalizing the output power density to the emitter area. This is the highest STPV system efficiency reported so far for any experimental STPV device. The incident optical laser power on the absorber side was 131 W. This is equivalent to a solar concentration factor of ~2100, which is within the practical limit and readily achievable with Fresnel lens setup.

Research Organization:
Oak Ridge National Lab. (ORNL), Oak Ridge, TN (United States). Center for Nanophase Materials Sciences (CNMS)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES); National Aeronautics and Space Administration (NASA); National Science Foundation (NSF)
Grant/Contract Number:
AC05-00OR22725
OSTI ID:
1607152
Journal Information:
Solar Energy, Vol. 197, Issue C; ISSN 0038-092X
Publisher:
ElsevierCopyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 58 works
Citation information provided by
Web of Science

References (26)

Optical Constants of Incandescent Refractory Metals journal January 1966
Enhanced low-gap thermophotovoltaic cell efficiency for a wide temperature range based on a selective meta-material emitter journal November 2018
Design and global optimization of high-efficiency thermophotovoltaic systems journal January 2010
Enhanced photovoltaic energy conversion using thermally based spectral shaping journal May 2016
Optimum semiconductor bandgaps in single junction and multijunction thermophotovoltaic converters journal March 2015
Theoretical study of GaSb PV cells efficiency as a function of temperature journal November 1995
Optical nanostructures design, fabrication, and applications for solar/thermal energy conversion journal May 2018
Theoretical limits of thermophotovoltaic solar energy conversion journal April 2003
Radiative heat transfer enhancement using geometric and spectral control for achieving high-efficiency solar-thermophotovoltaic systems journal March 2018
Unidirectional radiative heat transfer with a spectrally selective planar absorber/emitter for high-efficiency solar thermophotovoltaic systems journal October 2016
A nanophotonic solar thermophotovoltaic device journal January 2014
Role of spectral non-idealities in the design of solar thermophotovoltaics journal January 2014
Solar thermophotovoltaic energy conversion systems with two-dimensional tantalum photonic crystal absorbers and emitters journal March 2014
Theoretical analysis of solar thermophotovoltaic energy conversion with selective metafilm and cavity reflector journal October 2019
Ultraefficient thermophotovoltaic power conversion by band-edge spectral filtering journal July 2019
Infrared reflection characteristics in InN thin films grown by magnetron sputtering for the application of plasma filters journal October 2002
Temperature-dependent emissivity of silicon-related materials and structures journal January 1998
Absorber and emitter for solar thermo-photovoltaic systems to achieve efficiency exceeding the Shockley-Queisser limit journal January 2009
Natural convection above unconfined horizontal surfaces journal October 1969
Tabulated values of the Shockley–Queisser limit for single junction solar cells journal June 2016
Detailed Balance Limit of Efficiency of p‐n Junction Solar Cells journal March 1961
Thermal Grüneisen parameters of CdAl 2 O 4 , β–Si 3 N 4 , and other phenacite‐type compounds journal October 1982
Solar thermophotovoltaic system using nanostructures journal January 2015
Transparent conducting oxides as selective filters in thermophotovoltaic devices journal September 2005
TPV Systems with Solar Powered Tungsten Emitters
  • Vlasov, A. S.; Khvostikov, V. P.; Khvostikova, O. A.
  • THERMOPHOTOVOLTAIC GENERATION OF ELECTRICITY: TPV7: Seventh World Conference on Thermophotovoltaic Generation of Electricity, AIP Conference Proceedings https://doi.org/10.1063/1.2711750
conference January 2007
Efficiency and power density potential of combustion-driven thermophotovoltaic systems using GaSb photovoltaic cells journal January 2001

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