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Semiconductor photoelectrochemistrySemiconductor photoelectrochemical reactions are investigated. A model of the charge transport processes in the semiconductor, based on semiconductor device theory, is presented. It incorporates the nonlinear processes characterizing the diffusion and reaction of charge carriers in the semiconductor. The model is used to study conditions limiting useful energy conversion, specifically the saturation of current flow due to high light intensity. Numerical results describing charge distributions in the semiconductor and its effects on the electrolyte are obtained. Experimental results include: an estimate rate at which a semiconductor photoelectrode is capable of converting electromagnetic energy into chemical energy; the effect of cell temperature on the efficiency; a method for determining the point of zero zeta potential for macroscopic semiconductor samples; a technique using platinized titanium dioxide powders and ultraviolet radiation to produce chlorine, bromine, and iodine from solutions containing their respective ions; the photoelectrochemical properties of a class of layered compounds called transition metal thiophosphates; and a technique used to produce high conversion efficiency from laser radiation to chemical energy.
Document ID
19830009753
Acquisition Source
Legacy CDMS
Document Type
Technical Publication (TP)
Authors
Buoncristiani, A. M.
(Christopher Newport Coll. Hampton, VA, United States)
Byvik, C. E.
(NASA Langley Research Center)
Date Acquired
September 4, 2013
Publication Date
January 1, 1983
Subject Category
Energy Production And Conversion
Report/Patent Number
NAS 1.60:2088
L-15495
NASA-TP-2088
Report Number: NAS 1.60:2088
Report Number: L-15495
Report Number: NASA-TP-2088
Accession Number
83N18024
Funding Number(s)
PROJECT: RTOP 506-55-13-03
CONTRACT_GRANT: NSG-1514
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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