Patent classifications
C04B2235/3291
ZIRCONIA-BASED ANTIBACTERIAL DENTURE MATERIAL AND PREPARATION METHOD THEREOF
Disclosed are a zirconia-based antibacterial denture material and a preparation method thereof. The zirconia-based antibacterial denture material includes components with the following mass parts: 75 to 80 parts of zirconium oxide, 2 to 5 parts of nanosized silver oxide, 3 to 5 parts of nanosized zinc oxide, 1 to 3 parts of nanosized lanthanum oxide, 1 to 3 parts of nanosized yttrium oxide, 1 to 2 parts of cerium oxide, and 1 to 2 parts of size control agent. The zirconia-based antibacterial denture material has good antibacterial effect and high strength.
Mn-Zn-O SPUTTERING TARGET AND PRODUCTION METHOD THEREFOR
Provided are a MnZnO sputtering target that can be used for DC sputtering and a production method therefor. The MnZnO sputtering target has a chemical composition containing Mn, Zn, O, and an element X (X is one or two elements selected from the group consisting of W and Mo). A surface to be sputtered of the target has an arithmetic mean roughness Ra of 1.5 ?m or less or a maximum height Ry of 10 ?m or less.
Multilayer Component and Process for Producing a Multilayer Component
A multilayer component and a mathod for producing a multilayer component are disclosed. In an embodiment a multilayer component includes a ceramic main element and at least one metal structure, wherein the metal structure is cosintered and wherein main element is a varistor ceramic having 90 mol % of ZnO, from 0.5 to 5 mol % of Sb.sub.2O.sub.3, from 0.05 to 2 mol % of Co.sub.3O.sub.4, Mn.sub.2O.sub.3, SiO.sub.2 and/or Cr.sub.2O.sub.3, and <0.1 mol % of B.sub.2O.sub.3, Al.sub.2O.sub.3 and/or NiO.
Materials for ammonia synthesis
Disclosed herein are doped perovskite oxides. The doped perovskite oxides may be used as a cathode material in an electrochemical cell to electrochemically generate ammonia from N.sub.2. The doped perovskite oxides may be combined with nitride compounds, for instance iron nitride, to further increase the efficiency of the ammonia production.
Piezoelectric element with lithium manganate-containing ceramic layers and silver-containing internal electrodes
A multilayer piezoelectric element using an alkaline niobate-based piezoelectric ceramic, which can inhibit its reliability from dropping while lowering production cost, is characterized by forming internal electrodes (10) with a metal whose silver content is 80 percent by mass or higher, and also constituting piezoelectric ceramic layers (40) with a piezoelectric ceramic whose primary component is an alkaline niobate having a perovskite structure and which also contains a lithium manganate.
PIEZOELECTRIC CERAMIC, METHOD FOR THE PRODUCTION THEREOF AND ELECTROCERAMIC COMPONENT COMPRISING THE PIEZOCERAMIC
A hard lead zirconate titanate (PZT) ceramic of the general structure ABO3 is specified, wherein the PZT ceramic has doping with Mn on the B sites and doping with Cu on the A sites and/or on the B sites. A process for producing a ceramic material and an electroceramic component are moreover specified.
Multilayer component and process for producing a multilayer component
A multilayer component and a mathod for producing a multilayer component are disclosed. In an embodiment the multilayer component includes a ceramic main element being a varistor ceramic and at least one metal structure, wherein the metal structure is cosintered, and wherein the main element is doped with a material of the metal structure in such a way that a diffusion of the material from the metal structure into the main element during a sintering operation is reduced.
Varistor compositions and multilayer varistor
A varistor composition free of Sb comprising: (a) ZnO; (b) BBiZnPr glass, or BBiZnLa glass, or a mixture thereof; (c) a cobalt compound, a chromium compound, a nickel compound, a manganese compound, or mixtures thereof; (d) SnO.sub.2; and (e) an aluminum compound, a silver compound, or a mixture thereof. By adjusting the ratio between the components, the varistor composition may be made into a multilayer varistor with inner electrodes having a low concentration of noble metals at a sintering temperature less than 1200 C. The multilayer varistor made from the varistor composition has good maximum surge current, good ESD withstand ability, and low fabrication cost.
TUNGSTEN SUBOXIDE CERAMIC TARGET
A target for sputtering, use of the target and method of manufacture of the target is provided. The target has a single piece target material for sputter deposition, with at least 1 mm thickness of material for sputtering, having a lamellar structure and comprising a metal oxide with at least 50 wt. % or more of tungsten oxide. The atomic ratio of oxygen over tungsten results in a compound with oxygen deficiency with respect to the stoichiometric tungsten oxide. The method includes spraying metallic tungsten and/or tungsten oxide powder in amounts so as to provide a layer of material for sputtering being at least 1 mm thick and comprising non-stoichiometric tungsten oxide.
Thermoelectric conversion material, thermoelectric conversion element, thermoelectric conversion module, and optical sensor
A thermoelectric conversion material is represented by a composition formula Ag.sub.2S.sub.(1-x)Se.sub.x, where x has a value of greater than 0.01 and smaller than 0.6.