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Template-Free, Solid-State Synthesis of Hierarchically Macroporous S-Doped TiO2 Nano-Photocatalysts for Efficient Water Remediation

机译:自由模板,固态合成的分层大孔S掺杂TiO2纳米光催化剂用于有效的水处理

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Nanosized sulfur-doped titanium dioxide emerged as an attractive photocatalyst in various environmental remediation applications, yet most synthesis methods require hazardous sulfurizing agents and intricate synthesis procedures. Herein, we present a facile, sustainable, and environmentally friendly preparation process for the production of visible-light-active meso–macroporous sulfur-doped anatase TiO_(2) (S-TiO_(2)) nanoparticles for the first time. This strategy encompasses solventless mixing of titanium salt and surfeit yet nontoxic abundant elemental sulfur under continuous ball milling and moderate thermoannealing. The characterizations of as-obtained S-TiO_(2) nanoparticles showed enhanced physicochemical properties including distinctive surface features composed of hierarchical hollow macroporous channels having nanostructured mesoporous core walls. The annealing temperature was observed to control the structure and extent of sulfur doping in TiO_(2). Upon insertion of a sulfur atom into the TiO_(2) lattice, the band gap energy of S-TiO_(2) was significantly lowered, facilitating the enhanced photochemical activity. Owing to the effective S doping (1.7–2.8 atom %), and the interconnected hollow meso–macroporous nanostructure, the resulting nanosized S-TiO_(2) exhibited unique adsorption properties and superior photocatalytic efficiency for the rapid degradation of hazardous organic dyes and phenols for water remediation. The presented strategy holds high potential to provide rapid production of a hierarchical and highly porous S-TiO_(2) photocatalyst on a large scale for various environmental remediation and other myriad photochemical applications.
机译:纳米化硫掺杂二氧化钛作为各种环境修复应用中有吸引力的光催化剂,但大多数合成方法需要危险的硫化剂和复杂的合成程序。在此,我们首次介绍了一种用于生产可见光活性的中间硫含量硫掺杂苯酸酯TiO_(2)纳米颗粒的容易,可持续和环保的制备方法。该策略包括在连续球铣削和适度的热管下的钛盐和干枯性的无能混合钛盐和干枯性的浓度硫。所获得的S-TiO_(2)纳米颗粒的表征显示出增强的物理化学特性,包括由具有纳米结构介孔芯壁的分层中空大孔通道组成的独特表面特征。观察到退火温度控制TiO_(2)中掺杂的硫的结构和程度。在将硫原子插入TiO_(2)格中时,S-TiO_(2)的带隙能量显着降低,促进了增强的光化学活性。由于有效的掺杂(1.7-2.8原子%)和相互连接的中空型微孔纳米结构,所得纳米S-TiO_(2)表现出独特的吸附性能和优异的光催化效率,用于快速降解有害有机染料和酚类用于水处理。呈现的策略具有高潜力,可以在大规模中为各种环境修复和其他无数的光化学应用提供大规模的分层和高度多孔S-TiO_(2)光催化剂的潜力。

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