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环境介质对脉冲激光烧蚀法制备纳米TiO2催化剂的影响

Effects of environmental media on preparation of nano-TiO2 catalysts via pulsed laser ablation

  • 摘要: 传统化学法制备 TiO2光催化剂存在产物易团聚、有机杂质残留、二次污染风险高等缺陷;现有激光烧蚀法在介质选择与脉冲次数调控等方面的研究也不够深入。针对这些问题,聚焦激光烧蚀法核心参数的优化,采用实验表征与多物理场数值模拟相结合的方法,系统揭示了介质环境与激光脉冲累积效应对TiO2纳米颗粒形成的内在作用机制,实现了高性能纳米TiO2光催化剂的高效制备。结果显示,去离子水可显著约束激光等离子体膨胀,进而产生高压冲击波,提升靶材喷射效率与TiO2颗粒产率;当激光脉冲次数为 20 次时,颗粒尺寸均匀性与团聚抑制效果达到最优平衡;所制备的TiO2以金红石相为主,禁带宽度窄化至约 2.9 eV,表面富含羟基官能团,可有效促进光生载流子分离;TiO2光催化剂前 30 min 降解率达75%,催化性能显著优于传统溶胶-凝胶法制备的样品。本研究为高性能TiO2光催化剂的绿色精准制备及其在有机废水处理中的应用提供了新路径。

     

    Abstract:
    Titanium dioxide (TiO2) is a commonly used semiconductor photocatalytic material in organic wastewater treatment. Traditional chemical synthesis methods (such as the sol-gel method) suffer from problems including particle agglomeration, residual impurities, and secondary pollution, which restrict the improvement of its performance. As a green physical preparation technique, pulsed laser ablation (PLA) has the advantages of requiring no chemical reagents and yielding high-purity products. However, existing studies lack systematic exploration in medium selection and pulse number regulation, making it difficult to precisely prepare high-performance TiO2. To address this issue, this study focuses on optimizing the core parameters of laser ablation, aiming to clarify the intrinsic mechanism of the effects of environmental media and cumulative laser pulses on the formation of TiO2 nanoparticles, and to achieve their efficient synthesis.
    Titanium plates with a purity greater than 99.6% were used as the target material, and experiments were carried out using a nanosecond Nd:YAG laser. Firstly, the effects of three media (air, deionized water, and anhydrous ethanol) were compared. After deionized water was determined as the preferred medium, the regulating effects of 10, 20, and 30 pulses on particle nucleation and growth were further explored. The structural and performance characteristics of the particles were characterized using FE-SEM, EDS, and XRD. The catalytic performance was evaluated by methylene blue (MB) degradation experiments under ultraviolet light, and COMSOL simulation was employed to analyze the mechanical stress and temperature changes of the target material.
    Experimental results showed that deionized water had the optimal ablation effect. The products were mainly spherical particles, which were superior to those obtained in air and anhydrous ethanol in terms of yield, morphological regularity, and size distribution (Fig.3). Among the laser pulse numbers, 20 pulses was the optimal parameter. Under this condition, the particles were regularly spherical, with the highest proportion in the 70 nm~120 nm range, with no obvious agglomeration, and with a yield significantly higher than that at 10 pulses, while avoiding the particle agglomeration problem observed at 30 pulses (Fig.4, Fig.5). FE-SEM and EDS characterization revealed that its surface was rich in hydroxyl groups and exhibited good dispersibility (Fig.6, Fig.7).XRD analysis indicated that TiO2 prepared by the PLA method was mainly composed of the rutile phase, with a narrowed band gap of approximately 2.9 eV (Fig.8, Fig.9). In the MB degradation experiment, the TiO2 achieved a degradation rate of 75% within 30 minutes, and its initial reaction rate was superior to that of the sample prepared by the sol-gel method (Fig.10). COMSOL simulation revealed that the peak shock wave pressure in deionized water was higher than in the other media, and a single pulse could raise the target temperature to about 2100 K, exceeding the melting point of titanium (Fig.12, Fig.13).
    This study identifies “deionized water medium + 20 laser pulses” as the optimal process. TiO2 prepared under these conditions possesses both excellent structural properties and catalytic performance. The constructed “medium-pulse number” synergistic optimization system provides an effective pathway for the green and precise synthesis of high-performance TiO2.

     

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