Highly efficient reduced tungsten oxide-based hydrogen gas sensor at room temperature
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[1] S. Chaudhuri,et al. Highly efficient solar-light-driven self-floatable WO2.72@Fe3O4 immobilized cellulose nanofiber aerogel/polypropylene Janus membrane for interfacial photocatalysis , 2022, Journal of Photochemistry and Photobiology A: Chemistry.
[2] A. Tessema,et al. Highly Efficient Solar Light Driven g-C3N4@Cs0.33WO3 Heterojunction for the Photodegradation of Colorless Antibiotics , 2022, ACS omega.
[3] Chang‐Mou Wu,et al. Effects of patterned electrode on near infrared light-triggered cesium tungsten bronze/poly(vinylidene)fluoride nanocomposite-based pyroelectric nanogenerator for energy harvesting , 2022, Journal of Power Sources.
[4] Rui Guo,et al. Ultralow detection limit and ultrafast response/recovery of the H2 gas sensor based on Pd-doped rGO/ZnO-SnO2 from hydrothermal synthesis , 2022, Microsystems & nanoengineering.
[5] Chang‐Mou Wu,et al. Novel multifunctional RbxWO3@Fe3O4 immobilized Janus membranes for desalination and synergic-photocatalytic water purification , 2021 .
[6] Chang‐Mou Wu,et al. Magnetic recyclable self-floating solar light-driven WO2.72/Fe3O4 nanocomposites immobilized by Janus membrane for photocatalysis of inorganic and organic pollutants , 2021 .
[7] S. Kagawa,et al. Environmental and energy life cycle analyses of passenger vehicle systems using fossil fuel-derived hydrogen , 2021, International Journal of Hydrogen Energy.
[8] P. Senthil Kumar,et al. Progress in the production of hydrogen energy from food waste: A bibliometric analysis , 2021, International Journal of Hydrogen Energy.
[9] Chang‐Mou Wu,et al. NIR Light Stimulated Self‐Healing Reduced Tungsten Oxide/Polyurethane Nanocomposite Based on the Diels−Alder Reaction , 2021, Macromolecular Materials and Engineering.
[10] Chang‐Mou Wu,et al. Cesium tungsten bronze nanostructures and their highly enhanced hydrogen gas sensing properties at room temperature , 2021, International Journal of Hydrogen Energy.
[11] Chang‐Mou Wu,et al. Magnetically separable highly efficient full-spectrum light-driven WO2.72/Fe3O4 nanocomposites for photocatalytic reduction of carcinogenic chromium (VI) and organic dye degradation , 2020 .
[12] Junpeng Wang,et al. Urchin-Like WO2.72 Microspheres Decorated with Au and PdO Nanoparticles for the Selective Detection of Trimethylamine , 2020 .
[13] C. J. Kuo,et al. Highly efficient photocatalytic activity of Ag3VO4/WO2.72 nanocomposites for the degradation of organic dyes from the ultraviolet to near-infrared regions , 2020 .
[14] T. Roch,et al. Remarkable improvement in hydrogen sensing characteristics with Pt/TiO2 interface control. , 2019, ACS sensors.
[15] Ping Yang,et al. Self-reduction combined with photo-deposition decorating Au nanoparticles on urchin-like WO2.72 for enhancement of trimethylamine-sensing performance , 2019, Materials Science in Semiconductor Processing.
[16] Bohr-Ran Huang,et al. Highly enhanced hydrogen sensing properties of sericin-induced exfoliated MoS2 nanosheets at room temperature , 2019, Sensors and Actuators B: Chemical.
[17] W. Xie,et al. Facile Strategy for Synthesizing Non-Stoichiometric Monoclinic Structured Tungsten Trioxide (WO3−x) with Plasma Resonance Absorption and Enhanced Photocatalytic Activity , 2018, Nanomaterials.
[18] Jung-Sik Kim,et al. Graphene decorated Pd-Ag nanoparticles for H2 sensing , 2018 .
[19] Zhihua Wang,et al. Sensitization of Pd loading for remarkably enhanced hydrogen sensing performance of 3DOM WO3 , 2018, Sensors and Actuators B: Chemical.
[20] T. Ma,et al. In-situ growth of nanowire WO2.72 on carbon cloth as a binder-free electrode for flexible asymmetric supercapacitors with high performance , 2018, Journal of Energy Chemistry.
[21] Leila Fekri Aval,et al. Monitoring of hydrogen concentration using capacitive nanosensor in a 1% H2–N2 mixture , 2018 .
[22] Chang‐Mou Wu,et al. Highly Efficient Near Infrared Photothermal Conversion Properties of Reduced Tungsten Oxide/Polyurethane Nanocomposites , 2017, Nanomaterials.
[23] Sang-Eon Park,et al. Synthesis and Hydrogen Gas Sensing Properties of TiO2 -decorated CuO Nanorods , 2015 .
[24] Changhui Zhao,et al. Doping effect of In2O3 on structural and ethanol-sensing characteristics of ZnO nanotubes fabricated by electrospinning , 2015 .
[25] Lianqing Yu,et al. Hydrogen gas sensing properties of MoS2/Si heterojunction , 2015 .
[26] Kapil Sood,et al. A hydrogen gas sensor using a Pt-sputtered MWCNTs/ZnO nanostructure , 2014 .
[27] K. Anand,et al. Hydrogen sensor based on graphene/ZnO nanocomposite , 2014 .
[28] Hiranmay Saha,et al. ZnO–SnO2 based composite type gas sensor for selective hydrogen sensing , 2014 .
[29] M. Kakihana,et al. Morphology-controlled synthesis of W18O49 nanostructures and their near-infrared absorption properties. , 2012, Inorganic Chemistry.
[30] Matteo Tonezzer,et al. Zinc oxide nanowires on carbon microfiber as flexible gas sensor , 2012 .
[31] Andrée Lamberty,et al. Interlaboratory comparison for the measurement of particle size and zeta potential of silica nanoparticles in an aqueous suspension , 2011 .
[32] G. Lu,et al. Synthesis of novel SnO2/ZnSnO3 core–shell microspheres and their gas sensing properities , 2011 .
[33] G. U. Kulkarni,et al. Electrical and hydrogen-sensing characteristics of field effect transistors based on nanorods of ZnO and WO2.72. , 2009, Journal of nanoscience and nanotechnology.
[34] Wojtek Wlodarski,et al. Hydrogen sensing characteristics of WO3 thin film conductometric sensors activated by Pt and Au catalysts , 2005 .
[35] K. G. Motora,et al. Effect of ZnO particle size on piezoelectric nanogenerators and mechanical energy harvesting , 2022, Express Polymer Letters.
[36] K. G. Motora,et al. Scalable preparation of ultrathin porous polyurethane membrane-based triboelectric nanogenerator for mechanical energy harvesting , 2021, Express Polymer Letters.
[37] B. Liu,et al. Room-temperature H2 sensing interfered by CO based on interfacial effects in palladium-tungsten oxide nanoparticles , 2018 .