University of Vienna, Institute of Inorganic Chemistry, Währinger Strasse 42, A-1090 Vienna, Austria.
Institute of Physical Chemistry and Chemical Physics, Faculty of Chemical and Food Technology, Slovak University of Technology in Bratislava, Radlinského 9, SK-81237 Bratislava, Slovak Republic.
Dalton Trans. 2022 Apr 5;51(14):5367-5393. doi: 10.1039/d2dt00290f.
The synthesis of new types of mono- and polynuclear ruthenium nitrosyl complexes is driving progress in the field of NO generation for a variety of applications. Light-induced Ru-NO bond dissociation in solution may involve transient linkage isomers MS1 (Ru-ON) and MS2 (Ru-η-NO), which can be detected spectroscopically and analyzed computationally. The investigation of photoisomerization processes in the solid state may be useful for potential application of such complexes for data storage, photochromic or photomagnetic materials or even non-linear optics. Herein we describe the major developments in the synthesis of ruthenium nitrosyl complexes, their photoinduced linkage isomerization (PLI) processes, their NO release both in the solid state and in solution, and their application as potential anticancer drugs. Illustrative examples of such innovations made mainly in the last decade are provided.
新型单核和多核钌亚硝酰配合物的合成推动了 NO 生成领域的发展,为各种应用提供了可能。溶液中光诱导的 Ru-NO 键断裂可能涉及瞬态键联异构体 MS1(Ru-ON)和 MS2(Ru-η-NO),它们可以通过光谱学检测和计算分析进行检测。固态光致异构化过程的研究可能对这类配合物在数据存储、光致变色或光磁材料甚至非线性光学方面的潜在应用具有重要意义。本文描述了钌亚硝酰配合物的合成、光诱导键联异构化(PLI)过程、在固态和溶液中释放 NO 以及作为潜在抗癌药物的应用等方面的主要进展。提供了过去十年中主要创新的实例。