Beyond BODIPY: p区元素的二吡啶配合物。

IF 2.1 4区 化学 Q3 CHEMISTRY, INORGANIC & NUCLEAR
Isaac S Schomberg-Sanchez, Wilmar A Janusz, Christopher M Lemon
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引用次数: 0

摘要

双吡啶已被证明是元素周期表中金属的通用配体平台。由于大部分配位化学都集中在过渡金属上,主基团双吡啶化学一直没有得到充分的探索,特别是在重p块元素的情况下。二吡啶硼配合物(也称为BODIPY)最初于1968年被报道,但第一个被充分表征的重p-嵌段二吡啶配合物是在2006年。这一新兴研究领域经历了大幅增长,自2019年以来,该领域近一半的报告已发表。鉴于这种新的兴趣和快速发展,我们提供了重p-嵌段二吡啶配合物的重点综述,描述了这些分子的合成,结构和光谱。这些复合物的一个重要方面是它们的光学特性,可以以高量子产率访问红色和近红外波长。虽然这些主要基团双吡啶已被用作催化剂,但它们也被用于各种生物应用,包括光动力治疗、肿瘤成像和细胞毒性药物。随着这些新型p-嵌段配合物的合成方法的出现,双吡啶可以开始与主基团化学的最新进展和应用相结合,潜在地提供比其他配体平台更大的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Beyond BODIPY: dipyrrin complexes of P-block elements.

Dipyrrin has proven to be a versatile ligand platform for metals across the periodic table. Since much of the coordination chemistry has focused on transition metals, main-group dipyrrin chemistry has been underexplored, particularly in the case of heavy p-block elements. Boron dipyrrin complexes (also known as BODIPY) were initially reported in 1968, yet the first well-characterized example of a heavy p-block dipyrrin complex was in 2006. This nascent area of research has undergone a significant surge, where nearly half of the reports in this field have been published since 2019. Given this renewed interest and rapid development, we provide a focused review on heavy p-block dipyrrin complexes, describing the synthesis, structure, and spectroscopy of these molecules. One significant aspect of these complexes is their optical properties, which access red and near-infrared wavelengths with high quantum yields. While these main-group dipyrrins have been used as catalysts, they have also been leveraged for a variety of biological applications including photodynamic therapy, tumor imaging, and cytotoxic drugs. With the advent of synthetic methods for these novel p-block complexes, dipyrrins can begin to interface with recent advances and applications of main-group chemistry, potentially offering advantages over other ligand platforms.

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来源期刊
Journal of Coordination Chemistry
Journal of Coordination Chemistry 化学-无机化学与核化学
CiteScore
3.60
自引率
10.50%
发文量
171
审稿时长
3.2 months
期刊介绍: The Journal of Coordination Chemistry publishes the results of original investigations of coordination complexes, loosely defined as the interactions of organic or inorganic ligands with metal centres. Original investigations may involve syntheses, structures, physical and chemical properties, kinetics and mechanisms of reactions, calculations and applications of coordination compounds. The applications may involve bioinorganic, organometallic, catalytic, solid state/materials, coordination chemistry of nanostructured surfaces and medicinal studies. The Journal publishes original manuscripts, communications and reviews. Original manuscripts are expected to provide a clear contribution to the advance of coordination chemistry. Communications are short manuscripts with an urgency that requires rapid publication. Reviews are welcome in all areas of coordination chemistry and may focus on the metal, ligand or applications. Reviews of emerging areas of coordination chemistry should be developed fully from the basics, carefully relating the topic to the field in general. Reviews of well established subjects should collect developments from the literature and take a critical view of recent work.
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