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非晶态溶胶-凝胶二氧化钛的光子带隙和杀菌性能:替代结晶 TiO₂。

Photonic Band Gap and Bactericide Performance of Amorphous Sol-Gel Titania: An Alternative to Crystalline TiO₂.

机构信息

Departamento de Engenharia Química, Instituto Superior Técnico, Universidade de Lisboa, Av. Rovisco Pais, 1049-001 Lisboa, Portugal.

CQE, Centro de Química Estrutural, Instituto Superior Técnico, Universidade de Lisboa, 1049-001 Lisboa, Portugal.

出版信息

Molecules. 2018 Jul 10;23(7):1677. doi: 10.3390/molecules23071677.

DOI:10.3390/molecules23071677
PMID:29996500
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6100469/
Abstract

In addition to its traditional application in white pigments, nanocrystalline titania (TiO₂) has optoelectronic and photocatalytic properties (strongly dependent on crystallinity, particle size, and surface structure) that grant this naturally occurring oxide new technological applications. Sol-gel is one of the most widely used methods to synthesize TiO₂ films and NPs, but the products obtained (mostly oxy-hydrated amorphous phases) require severe heat-treatments to promote crystallization, in which control over size and shape is difficult to achieve. In this work, we obtained new photocatalytic materials based on amorphous titania and measured their electronic band gap. Two case studies are reported that show the enormous potential of amorphous titania as bactericide or photocatalyst. In the first, amorphous sol-gel TiO₂ thin films doped with N (TiON, 0.75) were designed to exhibit a photonic band gap in the visible region. The identification of Ti-O-N and N-Ti-O bindings was achieved by XPS. The photonic band gaps were found to be 3.18 eV for a-TiO₂ and 2.99 eV for N-doped a-TiO₂. In the second study, amorphous titania and amine-functionalized amorphous titania nanoparticles were synthetized using a novel base-catalysed sol-gel methodology. All the synthesized amorphous TiO₂ nanoparticles exhibit bactericide performance (, ASTME 2149-13).

摘要

除了在白色颜料中的传统应用外,纳米晶二氧化钛(TiO₂)还具有光电和光催化性能(强烈依赖于结晶度、颗粒尺寸和表面结构),赋予这种天然存在的氧化物新的技术应用。溶胶-凝胶法是合成 TiO₂薄膜和纳米颗粒最广泛使用的方法之一,但得到的产物(主要是氧合非晶相)需要进行剧烈的热处理以促进结晶,而在这一过程中难以控制尺寸和形状。在这项工作中,我们获得了基于非晶态二氧化钛的新型光催化材料,并测量了它们的电子带隙。报告了两个案例研究,展示了非晶态二氧化钛作为杀菌剂或光催化剂的巨大潜力。在第一个案例中,设计了掺氮的非晶溶胶-凝胶 TiO₂薄膜(TiON,0.75),以在可见光区域显示光子带隙。通过 XPS 实现了 Ti-O-N 和 N-Ti-O 键的识别。非晶态 TiO₂和 N 掺杂非晶态 TiO₂的光子带隙分别为 3.18 eV 和 2.99 eV。在第二个研究中,使用新型碱催化溶胶-凝胶方法合成了非晶态二氧化钛和胺功能化的非晶态二氧化钛纳米颗粒。所有合成的非晶态 TiO₂纳米颗粒均表现出杀菌性能(符合 ASTME 2149-13 标准)。

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