Synthesis of Tungsten Trioxide Nanowires and Doping with Metals
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- Category: Tungsten Information
- Published on Saturday, 18 September 2021 21:33
- Written by yuntao
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Tungsten trioxide (WO3) is an n-type semiconductor oxide that possesses a large bandgap in the range of 2.6–3.0 eV and has the potential for a variety of applications such as electrochemical devices, photovoltaic devices, photocatalytic devices, electrochromic devices, dye-sensitized solar cells, optical devices, field-emission displays, and gas sensors. Meanwhile, with the development of one-dimensional nanostructures, dimensionality and size of the materials have also been regarded as critical factors that may bring some novel and unexpected properties.
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Synthesis of Spherical Macroporous WO3 Particles
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- Category: Tungsten Information
- Published on Friday, 17 September 2021 01:00
- Written by yuntao
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Tungsten trioxide (WO3) has been extensively studied due to its affinity for visible light, chemical inertness, thermal stability, and harmlessness. These excellent properties make this material useful for solar-related applications such as photocatalysts, solar cells, water splitting, and hydrogen generation.
Growth of Tungsten Trioxide on Carbon Nanowalls
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- Category: Tungsten Information
- Published on Friday, 17 September 2021 00:05
- Written by yuntao
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Au-Modified Tungsten Trioxide and Its Gas Sensing to NOx
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- Category: Tungsten Information
- Published on Friday, 17 September 2021 00:36
- Written by yuntao
- Hits: 1441

Semiconductor metal oxides (SMOs) are highly potent gas sensors for gaseous detection in terms of screening of air eminence, low expenditure on synthesis and sensing property that can be modified. The semiconductor metal oxide gas sensor is considered the most capable gas-sensing device due to its high sensitivity, fast response, low cost, and small size.
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WO3–Pt/C Electrocatalysts for Oxygen Reduction Reaction
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- Category: Tungsten Information
- Published on Monday, 13 September 2021 14:21
- Written by yuntao
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Oxygen reduction reaction (ORR) has been widely studied for its applications in fuel cells. There is a growing demand for clean energy technologies such as fuel cells. Since the energy efficiency and battery voltage of electrochemical cells are limited by the slow kinetics of ORR.Currently, platinum dispersed on carbon (Pt/C) is the most active catalyst for ORR; however, in addition to its high cost, this metal also has problems with ORR overpotential and poor methanol tolerance. Supporting by transition metal oxides such as tungsten trioxide (WO3) and titanium dioxide (TiO2) to the Pt/C electrocatalyst provide not only active sites but also electronic and ionic conductivity.
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