富含氧空位纳米TiO2的合成及其光催化制备H2O2
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曲阜师范大学化学与化工学院

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O643.36

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山东省自然科学基金(ZR2021QE032);曲阜师范大学科研基金助


Preparation of oxygen-rich vacancy TiO2 and efficient photocatalytic H2O2 production
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School of Chemistry and Chemical Engineering,Qufu Normal University

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    摘要:

    本文以纳米TiO2(P25)为原料,通过简单的固相化学还原法制备了含有适宜含量氧空位(OV)的光催化剂TiO2-OV。对TiO2-OV的结构形貌、元素组成、OV含量和能带结构分别进行了XRD、SEM、XPS、EPR和UV-Vis DRS光谱测试,结合光催化实验、光电化学测量,考察不同NaBH4用量(当P25用量为2.0 g时的质量,下同)制备的TiO2-OV光催化生产H2O2的能力,并根据活性物种捕获实验推测光催化反应机理。结果表明,TiO2-OV是锐钛矿和金红石相混合物组成的高结晶;当NaBH4用量为10 mg时,所制备的材料TiO2-OV-10的直接带隙能(Eg)为2.77 eV,导带(CB)为-0.84 eV,此时展示出最佳的光催化生产H2O2性能,在模拟太阳光照射下,H2O2的生产效率为1752.8 μmol/(g·h)。经NaBH4热处理还原后之所以能表现出高效的光催化制备H2O2效率是因为TiO2表面产生了OV,适宜浓度的氧空位可作为电子陷阱,从而提高了光生电子-空穴的分离效率。经4次回收循环使用后,催化性能略有下降;TiO2-OV光催化生产H2O2的活性物种为超氧自由基(?O2-)、羟基自由基(?OH)和空穴(h+)。另外,CH3OH在促进光载体分离以及生成H2O2反应方面发挥了重要作用。本文为半导体光催化剂的设计策略提供了参考,并为了解光催化生产H2O2的机理提供了新视角。

    Abstract:

    TiO2-OV photocatalyst with suitable content of oxygen vacancy (OV) were prepared by a simple solid-state chemical reduction method using nano TiO2 (P25) as raw material. XRD, SEM, XPS, EPR and UV-Vis DRS spectra were used to test the structure, morphology, elemental composition, OV content and energy band structure of TiO2-OV, respectively. Combined with photocatalysis experiment and photoelectric chemical measurement, the photocatalytic H2O2 production by TiO2-OV prepared with different amounts of NaBH4 (when the amount of P25 is 2.0g, the same below) was investigated. And the photocatalytic reaction mechanism was speculated based on the capture experiment of active species. The results show that TiO2-OV is a highly crystalline mixture of anatase and rutile phase. When the amount of NaBH4 was 10 mg, the direct band gap energy (Eg) of the prepared material TiO2-OV-10 is 2.77 eV, and the conduction band (CB) is -0.84 eV, showing the best photocatalytic H2O2 performance. The production efficiency of H2O2 was 1752.8 μmol/(g·h) under simulated sunlight irradiation. The reason why the photocatalytic H2O2 production efficiency can be shown after NaBH4 heat treatment reduction is that OV is generated on the surface of TiO2, and oxygen vacancy with appropriate concentration can be used as an electron trap, thus improving the separation efficiency of photogenerated electron-hole. After 4 times of recycling, the catalytic performance decreased slightly. The active species of H2O2 photocatalyzed by TiO2-OV are superoxide radical (?O2-), hydroxyl radical (?OH) and hole (h+). In addition, CH3OH plays an important role in promoting photocarrier separation and generating H2O2. This paper provides a reference for the design strategy of semiconductor photocatalyst and a new perspective for understanding the mechanism of photocatalytic production of H2O2.

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巩云云,曹雅丽,高美超,冯媛媛,王建庭,严俊峰.富含氧空位纳米TiO2的合成及其光催化制备H2O2[J].精细化工,2024,41(12):

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  • 收稿日期:2023-12-25
  • 最后修改日期:2024-04-08
  • 录用日期:2024-02-07
  • 在线发布日期: 2024-12-10
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