DocumentCode :
3418726
Title :
Doped diamond thin film electron sources for thermionic energy conversion
Author :
Koeck, Franz A. M. ; Nemanich, Robert J. ; Sharp, Justin
Author_Institution :
Dept. of Phys., Arizona State Univ., Tempe, AZ, USA
fYear :
2013
fDate :
8-12 July 2013
Firstpage :
1
Lastpage :
3
Abstract :
Thermionic energy conversion is a process that allows direct conversion of heat into electrical energy without mechanically moving components. In a thermionic converter electrons from the emitter traverse a small gap, are collected by a counter-electrode, the collector, and a self generated voltage develops across the gap. We have prepared prepared an ultra-nanocrystalline diamond (UNCD) based thermionic electron emitter that exhibits a low effective work function of typically 1.4 eV. This was attributed in part to reduced band bending and to the negative electron affinity (NEA) surface. A thermionic energy converter comprised of 2 diamond electrodes were positioned to establish a 25 micron gap and the emitter which was operated at temperatures up to 700 Celsius with a self generated open circuit voltage of 0.35 V. The reduced power output of the device was in part attributed to space charge effects and diamond film resistivity. Utilizing surface ionization effects at the emitter by introducing atomic hydrogen into the converter gap resulted in significant power output increase. With atomic hydrogen in the gap, the converter was operated up to 750 Celsius indicative of efficient surface ionization for charge transfer as well as a stable NEA diamond surface.
Keywords :
charge exchange; electron affinity; surface ionisation; thermionic conversion; thin films; NEA diamond surface; UNCD; atomic hydrogen; charge transfer; converter gap; counter-electrode; diamond electrodes; diamond film resistivity; doped diamond thin film electron sources; negative electron affinity; reduced band bending; self generated open circuit voltage; space charge effects; surface ionization effects; thermionic electron emitter; thermionic energy conversion; ultra-nanocrystalline diamond; Atomic measurements; Conductivity; Diamonds; Hydrogen; Nitrogen; Surface morphology; Temperature measurement; Diamond; chemical vapor deposition; doping; energy conversion; thermionic electron emission;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Vacuum Nanoelectronics Conference (IVNC), 2013 26th International
Conference_Location :
Roanoke, VA
Type :
conf
DOI :
10.1109/IVNC.2013.6624727
Filename :
6624727
Link To Document :
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