Qin et al., 2016 - Google Patents
Thermal-oxidative growth of aligned W18O49 nanowire arrays for high performance gas sensorQin et al., 2016
- Document ID
- 12138474784469096465
- Author
- Qin Y
- Xie W
- Liu Y
- Ye Z
- Publication year
- Publication venue
- Sensors and Actuators B: Chemical
External Links
Snippet
Gas sensors based on aligned arrays of W 18 O 49 nanowires were formed directly via a novel route of in situ thermal oxidation of sputtered W film on the substrate attached patterned Pt electrodes. The well-developed nanowires have diameter of 10–20 nm and …
- 239000002070 nanowire 0 title abstract description 182
Classifications
-
- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B31/00—Carbon; Compounds thereof
- C01B31/02—Preparation of carbon; Purification; After-treatment
- C01B31/04—Graphite, including modified graphite, e.g. graphitic oxides, intercalated graphite, expanded graphite or graphene
-
- H—ELECTRICITY
- H01—BASIC ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES; ELECTRIC SOLID STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H01L29/00—Semiconductor devices adapted for rectifying, amplifying, oscillating or switching, or capacitors or resistors with at least one potential-jump barrier or surface barrier, e.g. PN junction depletion layer or carrier concentration layer; Details of semiconductor bodies or of electrodes thereof; Multistep manufacturing processes therefor
- H01L29/66—Types of semiconductor device; Multistep manufacturing processes therefor
- H01L29/68—Types of semiconductor device; Multistep manufacturing processes therefor controllable by only the electric current supplied, or only the electric potential applied, to an electrode which does not carry the current to be rectified, amplified or switched
- H01L29/76—Unipolar devices, e.g. field effect transistors
- H01L29/772—Field effect transistors
- H01L29/78—Field effect transistors with field effect produced by an insulated gate
- H01L29/786—Thin film transistors, i.e. transistors with a channel being at least partly a thin film
- H01L29/7869—Thin film transistors, i.e. transistors with a channel being at least partly a thin film having a semiconductor body comprising an oxide semiconductor material, e.g. zinc oxide, copper aluminium oxide, cadmium stannate
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Qin et al. | Thermal-oxidative growth of aligned W18O49 nanowire arrays for high performance gas sensor | |
Navale et al. | Enhanced NO2 sensing aptness of ZnO nanowire/CuO nanoparticle heterostructure-based gas sensors | |
Zhao et al. | Highly selective NO2 sensor based on p-type nanocrystalline NiO thin films prepared by sol–gel dip coating | |
Singh et al. | Synthesis of In2O3–ZnO core–shell nanowires and their application in gas sensing | |
Jiaqiang et al. | Hydrothermal synthesis and gas sensing characters of ZnO nanorods | |
Zhang et al. | The preparation of reduced graphene oxide-encapsulated α-Fe2O3 hybrid and its outstanding NO2 gas sensing properties at room temperature | |
Bie et al. | Nanopillar ZnO gas sensor for hydrogen and ethanol | |
Zeng et al. | Growth and selective acetone detection based on ZnO nanorod arrays | |
Zhao et al. | Electrospun Cu-doped ZnO nanofibers for H2S sensing | |
Hsueh et al. | Laterally grown ZnO nanowire ethanol gas sensors | |
Zhang et al. | Synthesis of the cactus-like silicon nanowires/tungsten oxide nanowires composite for room-temperature NO2 gas sensor | |
Qi et al. | Synthesis and toluene sensing properties of SnO2 nanofibers | |
Cheng et al. | Novel lotus root slice-like self-assembled In2O3 microspheres: synthesis and NO2-sensing properties | |
Hjiri et al. | Al-doped ZnO for highly sensitive CO gas sensors | |
Sun et al. | Dispersive SnO2 nanosheets: hydrothermal synthesis and gas-sensing properties | |
Zhang et al. | Development of microstructure In/Pd-doped SnO2 sensor for low-level CO detection | |
Navale et al. | Rapid synthesis strategy of CuO nanocubes for sensitive and selective detection of NO2 | |
Yang et al. | Ethanol gas sensor based on Al-doped ZnO nanomaterial with many gas diffusing channels | |
Chen et al. | Surface functionalization of porous In2O3 nanofibers with Zn nanoparticles for enhanced low-temperature NO2 sensing properties | |
Van Duy et al. | Mixed SnO2/TiO2 included with carbon nanotubes for gas-sensing application | |
Zhao et al. | Direct growth of ZnO nanodisk networks with an exposed (0 0 0 1) facet on Au comb-shaped interdigitating electrodes and the enhanced gas-sensing property of polar {0 0 0 1} surfaces | |
Li et al. | NO2-sensing properties based on the nanocomposite of n-WO3− x/n-porous silicon at room temperature | |
El-Maghraby et al. | Synthesis of SnO2 nanowires their structural and H2 gas sensing properties | |
Fan et al. | Ultra-long Zn2SnO4-ZnO microwires based gas sensor for hydrogen detection | |
Liang et al. | Synthesis and room temperature NO2 gas sensitivity of vanadium dioxide nanowire structures by chemical vapor deposition |