Growth of boron doped diamond by vapor deposition
Growth of p-type semiconducting diamond by vapor phase deposition using methane-diborane doping gas mixture in presence of diamond seed crystals
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Growth of p-type semiconducting diamond by vapor phase deposition using methane-diborane doping gas mixture in presence of diamond seed crystals
Lithium-doping effects on silicon responses to irradiation for solar cells - conference
Lithium-doped solar cell fabrication techniques, and statistical analysis of electrical output
Electrical measurements on bulk silicon samples and lithium-doped solar cells
Co-60 gamma radiation and isochronal annealing temperature effects on minority carrier lifetime of Al and Li doped bulk silicon
Co-60 gamma radiation damage in Li-doped p-n and conventional n-p solar cells
Form of structural damage in Li-doped p-n silicon solar cells produced by fast neutron irradiation
Infrared spectroscopic and photoconductivity determinations of electron irradiation effects in Li-doped floating zone and crucible grown silicon
Lithium doped solar cell hardness to 1 MeV electron irradiation
Si solar cell radiation resistance improvement through Li doping, noting efficiencies in excess of state-of-art N/P cells after exposure to 1 MeV electrons
Transferred electron bulk negative differential conductivity devices, analyzing combined doping and geometry effects on space charge and domain dynamics
Bipolar junction transistor doping effects on bandgap decrease and emitter efficiency, explaining current gain temperature dependence
Effects of radiation on efficiency of lithium doped solar cells in electrical space power system
Conference on lithium doped silicon solar cell development and fabrication methods
The dynamic nuclear polarization of hydrogen nuclei by the solid effect in single crystals of samarium doped lanthanum magnesium nitrate (Sm:LMN) was studied theoretically and experimentally. The equations of evolution governing the dynamic nuclear polarization by the solid effect were derived in detail using the spin temperature theory and the complete expression for the steady state enhancement of the nuclear polarization was calculated. Experimental enhancements of the proton polarization were obtained for eight crystals at 9.2 GHz and liquid helium temperatures. The samarium concentration ranged from 0.1 percent to 1.1 percent as determined by X-ray fluorescence. A peak enhancement of 181 was measured for a 1.1 percent Sm:LMN crystal at 3.0 K. The maximum enhancements extrapolated with the theory using the experimental data for peak enhancement versus microwave power and correcting for leakage, agree with the ideal enhancement (240 in this experiment) within experimental error for three of the crystals.
Moessbauer spectra were obtained of single crystal and powdered samples of rutile (TiO2) doped to about one percent by weight in isotopically enriched iron. It is shown that the oxidation state may be reversibly altered in situ. After reduction, the oxygen neighbors of the dopant ion are apparently shifted to accomodate the larger ferrous ion. The agreement of calculated quadrupole splittings with experimental results suggests that impurities and oxygen vacancies are uniformly distributed in powdered samples, giving the dopant ions an 'ideal lattice' local environment. The differences between the single crystal and powder sample hyperfine parameters are attributed to variations in stoichiometry, charge compensation mechanisms, or other diffusion related parameters.
Commercial silica fibers of the type being evaluated for reusable surface insulation for reentry vehicles were found to be porous and composed of subfibers. The effect on shrinkage and devitrification of soaking such silica fibers in water, acetic acid, chromium acetate, and chromium nitrate solutions was studied. Felted specimens made of chromia-doped fibers shrunk only about one-half as much as those made of untreated fibers after exposure in air for 4 hours at 1300 C. The devitrification rate of fibers given prolonged soaks in chromium nitrate was as low as that of as-received fibers.
Mechanical and thermal property values are reported for crystalline cesium iodide doped with sodium and thallium. Young's modulus, bulk modulus, shear modulus, and Poisson's ratio were obtained from ultrasonic measurements. Young's modulus and the samples' elastic and plastic behavior were also measured under tension and compression. Thermal expansion and thermal conductivity were the temperature dependent measurements that were made.