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氮掺杂锐钛矿纳米纤维负载贵金属纳米粒子用于光催化产氢。

Nitrogen-doped anatase nanofibers decorated with noble metal nanoparticles for photocatalytic production of hydrogen.

机构信息

Microelectronics and Materials Physics Laboratories, Department of Electrical and Information Engineering, University of Oulu, P.O. Box 4500, Oulu FIN-90014, Finland.

出版信息

ACS Nano. 2011 Jun 28;5(6):5025-30. doi: 10.1021/nn201111j. Epub 2011 May 24.

Abstract

We report the synthesis of N-doped TiO(2) nanofibers and high photocatalytic efficiency in generating hydrogen from ethanol-water mixtures under UV-A and UV-B irradiation. Titanate nanofibers synthesized by hydrothermal method are annealed in air and/or ammonia to achieve N-doped anatase fibers. Depending on the synthesis route, either interstitial N atoms or new N-Ti bonds appear in the lattice, resulting in slight lattice expansion as shown by XPS and HR-TEM analysis, respectively. These nanofibers were then used as support for Pd and Pt nanoparticles deposited with wet impregnation followed by calcination and reduction. In the hydrogen generation tests, the N-doped samples were clearly outperforming their undoped counterparts, showing remarkable efficiency not only under UV-B but also with UV-A illumination. When 100 mg of catalyst (N-doped TiO(2) nanofiber decorated with Pt nanoparticles) was applied to 1 L of water-ethanol mixture, the H(2) evolution rates were as high as 700 μmol/h (UV-A) and 2250 μmol/h (UV-B) corresponding to photo energy conversion percentages of ∼3.6 and ∼12.3%, respectively.

摘要

我们报告了氮掺杂 TiO(2) 纳米纤维的合成以及在 UV-A 和 UV-B 照射下从乙醇-水混合物中高效光催化产氢的性能。通过水热法合成的钛酸盐纳米纤维在空气中和/或氨中退火以实现氮掺杂锐钛矿纤维。根据合成路线,晶格中会出现间隙 N 原子或新的 N-Ti 键,这分别导致 XPS 和高分辨率透射电子显微镜 (HR-TEM) 分析显示出晶格轻微膨胀。然后,将这些纳米纤维用作通过湿浸渍沉积、煅烧和还原制备的 Pd 和 Pt 纳米颗粒的载体。在制氢测试中,氮掺杂样品的性能明显优于未掺杂样品,不仅在 UV-B 照射下,而且在 UV-A 照射下也表现出显著的效率。当将 100 mg 催化剂(负载 Pt 纳米颗粒的氮掺杂 TiO(2) 纳米纤维)应用于 1 L 水-乙醇混合物时,H(2) 的生成速率高达 700 μmol/h(UV-A)和 2250 μmol/h(UV-B),相应的光能量转换百分比分别约为 3.6%和 12.3%。

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