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Preparation of N-doped TiO2 photocatalyst by atmospheric pressure plasma process for VOCs decomposition under UV and visible light sources

机译:常压等离子体法制备N掺杂TiO2 光催化剂在紫外和可见光下分解VOCs

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摘要

The nitrogen doped (N-doped) titanium dioxide (TiO2) photocatalyst was prepared by the atmospheric-pressure plasma-enhanced nanoparticles synthesis (APPENS) process operated under normal temperature, i.e. the dielectric barrier discharge plasma process. The N2 carrier gas is dissociated in the AC powered nonthermal plasma environment and subsequently doped into the TiO2 photocatalyst that was capable of being induced by visible light sources. The APPENS process for producing N-doped TiO2 showed a higher film deposition rate in the range of 60–94 nm/min while consuming less power (<100 W) as compared to other plasma processes reported in literatures. And the photocatalytic activity of the N-doped TiO2 photocatalyst was higher than the commercial ST01 and P25 photocatalysts in terms of toluene removals in a continuous flow reactor. The XPS measurement data indicated that the active N doping states exhibited N 1s binding energies were centered at 400 and 402 eV instead of the TiN binding at 396 eV commonly observed in the literature. The light absorption in the visible light range for N-doped TiO2 was also confirmed by a clear red shift of the UV-visible spectra.
机译:通过常压等离子体增强纳米颗粒合成(APPENS)工艺,即电介质阻挡放电等离子体工艺,制备了氮掺杂(N掺杂)二氧化钛(TiO2 )光催化剂。 N2 载气在交流电非热等离子体环境中被分解,然后被掺杂到能够被可见光源诱导的TiO2 光催化剂中。与文献报道的其他等离子体工艺相比,APPENS生产N掺杂TiO2 的工艺在60-94 nm / min的范围内显示出更高的成膜速率,同时消耗的功率更少(<100 W)。在连续流反应器中去除甲苯方面,N掺杂的TiO2 光催化剂的光催化活性高于市售的ST01和P25光催化剂。 XPS测量数据表明,活性N掺杂态表现出N 1s的结合能集中在400和402 eV的中心,而不是TiN在396 eV的结合能。 N掺杂的TiO2 在可见光范围内的光吸收也通过紫外可见光谱的明显红移来确认。

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