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离散的Ti-O-Ti配合物:可见光激活的TiO光敏剂的均相替代物。

Discrete Ti-O-Ti Complexes: Visible-Light-Activated, Homogeneous Alternative to TiO Photosensitisers.

作者信息

Behm Kira, Fazekas Eszter, Paterson Martin J, Vilela Filipe, McIntosh Ruaraidh D

机构信息

Institute of Chemical Sciences, Heriot-Watt University, Edinburgh, EH14 4AS, UK.

出版信息

Chemistry. 2020 Aug 3;26(43):9486-9494. doi: 10.1002/chem.202001678. Epub 2020 Jul 9.

Abstract

A series of novel bimetallic Ti amine bis(phenolate) complexes was synthesised and fully characterised. X-ray crystallography studies revealed distorted octahedral geometries around the Ti centres with single or double oxo-bridges connecting the two metals. These robust, air- and moisture-stable complexes were employed as photosensitisers generating singlet oxygen following irradiation with visible light (420 nm) LED module in a commercial flow reactor. All five complexes showed high activity in the photo-oxygenation of α-terpinene and achieved complete conversion to ascaridole in four hours at ambient temperature. The excellent selectivity of these photosensitisers towards ascaridole (vs. transformation to p-cymene) was demonstrated with control experiments using a traditional TiO catalyst. Further comparative studies employing the free pro-ligands as well as a monometallic analogue highlighted the importance of the 'TiO -like' moiety in the polymetallic catalysts. Computational studies were used to determine the nature of the ligand to metal charge transfer (LMCT) states and singlet-triplet gaps for each complex, the calculated trends in the UV-vis absorption spectra across the series agreed well with the experimental results.

摘要

合成并全面表征了一系列新型双金属钛胺双(酚盐)配合物。X射线晶体学研究表明,钛中心周围存在扭曲的八面体几何结构,有单个或双个氧桥连接两种金属。这些稳定、耐空气和湿气的配合物被用作光敏剂,在商用流动反应器中用可见光(420 nm)发光二极管模块照射后产生单线态氧。所有五种配合物在α-萜品烯的光氧化反应中均表现出高活性,并在室温下四小时内完全转化为蛔蒿素。使用传统TiO催化剂进行的对照实验证明了这些光敏剂对蛔蒿素具有优异的选择性(相对于转化为对异丙基甲苯)。采用游离前体配体以及单金属类似物的进一步比较研究突出了多金属催化剂中“类TiO”部分的重要性。计算研究用于确定每种配合物的配体到金属电荷转移(LMCT)态的性质和单线态-三线态能隙,该系列紫外可见吸收光谱的计算趋势与实验结果吻合良好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a38/7496837/3fbb74e69836/CHEM-26-9486-g001.jpg

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