Spectral emittance of aluminum oxide and zinc oxide on opaque substrates
Normal spectral emittance of aluminum and zinc oxide applied to opaque substrates of different radiative properties
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Normal spectral emittance of aluminum and zinc oxide applied to opaque substrates of different radiative properties
Surface interactions of ZnO and ZnS with NO determined with EPR spectrum
Design and tests of prototype silver zinc-oxide storage battery power supply
Separators for silver oxide-zinc and silver oxide- cadmium cells for spacecraft application
Barrier properties of membrane separators for silver oxide-zinc and silver oxide-cadmium spacecraft batteries
Improved separators for silver oxide-zinc and silver oxide-cadmium cells for spacecraft application
Improved separators for silver oxide-zinc and silver oxide-cadmium cells - flexibility and electrolytic conductivity in modified methyl cellulose polyacid films
Silver oxide diffusion tests on separator membranes for use in silver oxide-cadmium and silver oxide-zinc electrochemical cells
Separator materials for secondary silver zinc electrochemical cells for use in space missions
Separators for zinc-silver oxide cells for spacecraft applications
Wrapping and preswelling techniques, and materials for improved separators for zinc-silver oxide and cadmium-silver oxide cells
Silicate treated zinc oxide thermal control coatings, discussing effective stabilization against UV induced degradation in IR region of solar spectrum
Optical properties of zinc oxide analyzed by exposing samples to mechanical and thermal treatments and UV radiation
Optical properties of zinc oxide analyzed by exposing samples to mechanical and thermal treatments and UV radiation
Ultraviolet degradation of zinc oxide thin films
Conductive nanoporous conformal coatings are important for various applications including touchscreens, displays, and electrochromic windows, though design of such coating with controlled porosity and composition remains challenging. We propose a sequential infiltration synthesis (SIS) method for the fabrication of nanoporous conductive aluminum-doped zinc oxide (AZO) films by infiltrating block copolymer (BCP) templates, specifically polystyrene-block-polyvinyl pyridine (PS-b-P4VP), with diethyl zinc and trimethyl aluminum precursors. Tunability of both porosity and electrical conductivity is achieved by precisely controlling the swelling behavior of the polymer templates and adjusting the number of SIS cycles. Further, our results reveal that porosity levels can reach up to 80 %, with resistivity as low as ~7.83 Ωcm. Using conductive atomic force microscopy (C-AFM) and Hall effect measurements, we show that lower concentrations of aluminum doping relative to zinc (around 1: 17) results in higher conductivity of the AZO films. Additionally, AZO is based on zinc oxide (ZnO) which is cost-efficient, abundant and less toxic than commonly used transparent conductive oxides such as indium tin oxide (ITO) and fluorine-doped tin oxide (FTO). Therefore, this novel approach opens new possibilities for creating highly porous, conformal, conductive AZO coatings with customizable porosity and composition, making them ideal candidates for diverse optoelectronic applications.
A JPL study was conducted to evaluate the cell design parameters that contribute to the cycle life of sealed, heat-sterilized silver oxide-zinc cells. Test cells having a rated capacity of 4.2 A-h were fabricated using zinc oxide electrodes prepared by the sintered Teflon process. Two separator variations were evaluated, one having acrylic acid and the other methacrylic acid grafted to irradiated polyethylene film. Significant results of this study include the following: (1) cycle life in excess of 300 cycles was attained; (2) a zinc oxide/silver stoichiometric ratio of 1.5 resulted in greater cycle life than a ratio of 1.1, and similar cycle life to cells having a ratio of 2; (3) cells having methacrylic acid grafted separators suffered somewhat less in capacity loss due to zinc electrode shape change than cells having acrylic acid type; (4) use of acrylic acid grafted separators was slightly superior to the methacrylic acid type in respect to silver penetration; and (5) the inclusion of a layer of potassium titanate paper adjacent to the zinc electrodes resulted in cells that achieved higher cycle life before any of the group failed than that reached by cells of any other construction.