多肽模板二氧化钛生物矿化对提高光吸收和光降解活性的影响

IF 3.2 3区 工程技术 Q2 CHEMISTRY, PHYSICAL Molecular Systems Design & Engineering Pub Date : 2022-11-03 DOI:10.1039/D2ME00136E
Ryosuke Tsuchiya and Kazuki Murai
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引用次数: 1

摘要

此前已有研究通过使用几种有机模板控制TiO2的形态和晶相来研究TiO2的矿化,但模板的分子结构与矿化后TiO2的功能之间的关系尚未见报道。在本研究中,我们研究了不同官能团矿化TiO2对肽模板表面(即Ac-(Val-Lys-Val-Lys-Val-Glu)3-CONH2: KE、Ac-(Val-Lys-Val-Lys-Val-Ser)3-CONH2: KS和Ac-(val - lys - val - tyr)3-CONH2: KY)的影响及其光降解活性。KE-TiO2和KS-TiO2杂化物仅在紫外区(<380 nm)吸收,而key - tio2杂化物在更宽的可见光区(<500 nm)吸收。此外,由于电子和空穴的有效分离,KS-TiO2杂化体系表现出比其他体系更高的自光敏降解活性,而key - tio2杂化体系不仅由于亚甲基蓝+˙自由基阳离子(MB+˙)与注入的电子之间的复合而导致自光敏降解活性降低,而且在紫外或可见光照射下光催化活性增加。我们的研究结果表明,生物矿化TiO2提供了一种极好的、极具吸引力的方法,可以通过一种廉价和简单的工艺进一步功能化和优化TiO2,这将在所有利用TiO2的研究领域得到应用。
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Peptide-templated biomineralization of titanium dioxide toward improved light absorption and photodegradation activity†

The mineralization of TiO2 has been previously investigated by controlling the morphology and crystal phase of TiO2 using several organic templates, but the relationship between the molecular structure of the template and the functionality of the mineralized TiO2 has not been reported. In this study, we investigated the influence and photodegradation activity of the TiO2 mineralized by different functional groups on the peptide template surface (i.e., Ac-(Val-Lys-Val-Lys-Val-Glu)3-CONH2: KE, Ac-(Val-Lys-Val-Lys-Val-Ser)3-CONH2: KS, and Ac-(Val-Lys-Val-Lys-Val-Tyr)3-CONH2: KY). The KE–TiO2 and KS–TiO2 hybrids exhibited absorption only in the UV region (<380 nm), whereas the KY–TiO2 hybrid absorbed in a wider wavelength region that stretched into the visible spectrum (<500 nm). In addition, the KS–TiO2 hybrid showed a higher self-photosensitized degradation activity than the other systems owing to an efficient separation between electrons and holes, whereas the KY–TiO2 hybrid showed not only a reduction in self-photosensitized degradation activity due to the recombination between the methylene blue+˙ radical cation (MB+˙) and the injected electron, but also an increase in photocatalytic activity under UV or visible light irradiation. Our findings show that biomineralizing TiO2 presents an excellent and highly attractive approach to further functionalizing and optimizing TiO2via an inexpensive and facile process, which will find use in all research fields that utilize TiO2 for such purposes.

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来源期刊
Molecular Systems Design & Engineering
Molecular Systems Design & Engineering Engineering-Biomedical Engineering
CiteScore
6.40
自引率
2.80%
发文量
144
期刊介绍: Molecular Systems Design & Engineering provides a hub for cutting-edge research into how understanding of molecular properties, behaviour and interactions can be used to design and assemble better materials, systems, and processes to achieve specific functions. These may have applications of technological significance and help address global challenges.
期刊最新文献
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