Ionic liquid-mediated microstructure regulations of layered perovskite for enhanced visible light photocatalytic activity

Reshalaiti Hailili, D. Bahnemann, J. Schneider
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引用次数: 1

Abstract

The presence of pollutants, e.g., pharmaceutical residues and industrial pollutants causes serious risks and irreversible damage to public health and ecological balance. Semiconductor-based photocatalysis is an attractive way to treat polluted water. Rational design and nanostructuring of semiconductors with visible light absorption and prominent surfaces could strengthen surface-interface reactions, resulting in improved photocatalytic degradation. Herein, layered structured perovskites Bi4Ti3O12 (BTO) were synthesized by an ionic liquid [1-butyl-3-methylimidazolium iodide (Bmim)I] assisted approach. The precise tuning of synthetic conditions allowed formations of various microstructures, including spherical nanoparticles, nanoplates and nanorods, respectively. The optical analyses demonstrated that samples were typically visible light absorbents with narrow band gap energies (2.96–2.73 eV), and displayed pronounced degradation for pharmaceutical residues under visible light illumination. The factors responsible for the high efficiency of BTO photocatalysts were discussed in terms of unique structure, optical alignment, dipole induced carrier separation and formation of active radicals. Among studied samples, the nanorod shaped BTO showed 1.31 and 1.46 times higher apparent rate constants for tetracycline and ibuprofen degradation than its counterparts (spherical nanoparticles and nanoplates), respectively. The better performance of nanorods was ascribed to their higher visible light harvesting ability. Importantly, BTO nanorods exhibited nonselective degradation activity for diverse pollutants of pharmaceutical residues and industrial contaminants. This work demonstrates the unique strategy of microstructure regulation and a wide range of applications of layered perovskites for environmental remediation.
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离子液体介导的层状钙钛矿微观结构调控对增强可见光催化活性的影响
药物残留物和工业污染物等污染物的存在会对公众健康和生态平衡造成严重风险和不可逆转的损害。基于半导体的光催化是一种很有吸引力的污水处理方法。具有可见光吸收和突出表面的半导体的合理设计和纳米结构可以加强表面界面反应,从而改善光催化降解。本文采用离子液体[1-丁基-3-甲基咪唑鎓碘化物(Bmim)I]辅助合成了层状结构的钙钛矿Bi4Ti3O12(BTO)。合成条件的精确调节允许形成各种微观结构,分别包括球形纳米颗粒、纳米板和纳米棒。光学分析表明,样品通常是具有窄带隙能量(2.96–2.73 eV)的可见光吸收剂,并且在可见光照射下对药物残留物表现出明显的降解。从独特的结构、光学取向、偶极诱导的载流子分离和活性自由基的形成等方面讨论了BTO光催化剂高效的因素。在所研究的样品中,纳米棒状BTO对四环素和布洛芬的降解表观速率常数分别是其对应物(球形纳米颗粒和纳米板)的1.31倍和1.46倍。纳米棒更好的性能归因于其更高的可见光捕获能力。重要的是,BTO纳米棒对药物残留物和工业污染物的各种污染物表现出非选择性降解活性。这项工作展示了层状钙钛矿在环境修复中的独特微观结构调控策略和广泛应用。
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