Title :
Greater than 20% radiant heat conversion efficiency of a thermophotovoltaic radiator/module system using reflective spectral control
Author :
Wernsman, Bernard ; Siergiej, Richard R. ; Link, Samuel D. ; Mahorter, Robert G. ; Palmisiano, Marc N. ; Wehrer, Rebecca J. ; Schultz, Robert W. ; Schmuck, Gregory P. ; Messham, Rowan L. ; Murray, Susan ; Murray, Christopher S. ; Newman, Fred ; Taylor, Da
Author_Institution :
Bechtel Bettis Inc., West Mifflin, PA, USA
fDate :
3/1/2004 12:00:00 AM
Abstract :
An InGaAs monolithic interconnected module (MIM) using reflective spectral control has been fabricated and measured in a thermophotovoltaic radiator/module system (radiator, optical cavity, and thermophotovoltaic module). Results showed that at a radiator and module temperature of 1039°C and 25°C, respectively, 23.6% thermophotovoltaic radiator/module system radiant heat conversion efficiency and 0.79W/cm2 maximum thermophotovoltaic radiator/module system power density were obtained. The use of reflective spectral control increased the spectral efficiency and thus the thermophotovoltaic radiator/module system radiant heat conversion efficiency by ∼16% (relative). However, the amount of useful radiation reaching the MIM decreased by ∼7% (relative) compared to using transmissive spectral control. Also, the thermophotovoltaic system radiant heat conversion efficiency and maximum power density using either transmissive or reflective spectral control decreased as the MIM temperature increased. The MIM using reflective spectral control was found to be more sensitive to changes in the MIM temperature than the MIM using transmissive spectral control.
Keywords :
III-V semiconductors; MIM devices; gallium arsenide; indium compounds; monolithic integrated circuits; thermophotovoltaic cells; InGaAs; monolithic interconnected module; optical cavity; photovoltaic cells; radiant heat conversion efficiency; radiator; reflective spectral control; system power density; thermophotovoltaic cells; thermophotovoltaic module; thermophotovoltaic radiator-module system; transmissive spectral control; Control systems; Indium phosphide; Optical control; Photonic band gap; Photovoltaic systems; Semiconductor diodes; Semiconductor materials; Substrates; Temperature control; Temperature sensors;
Journal_Title :
Electron Devices, IEEE Transactions on
DOI :
10.1109/TED.2003.823247