Department of Applied Chemistry, Graduate School of Science and Engineering/ Research Unit for Power Generation and Storage Materials, Ehime University, 3 Bunkyo-cho, Matsuyama, 790-8577, Japan.
Research Unit for Development of Organic Superconductors, Ehime University, 2-5 Bunkyo-cho, Matsuyama, 790-8577, Japan.
Chem Rec. 2021 Dec;21(12):3520-3531. doi: 10.1002/tcr.202100107. Epub 2021 Jun 4.
Tetrathiafulvalene (TTF) and its analogs are fascinating molecules in materials science based on their excellent electron-donating abilities. This personal account describes recent advances in the synthesis of TTF analogs for functional materials via the palladium-catalyzed modification of peripheries of TTF analogs. We first consider three types of molecules: fluorophore-TTF hybrid molecules, multi-redox systems, and an organic ligand for metal-organic frameworks. These molecules were successfully synthesized via Stille coupling or palladium-catalyzed direct C-H arylation and their structural, electrochemical, and optical properties were clarified. Subsequently, phosphorus-substituted TTF analogs were successfully synthesized for future applications of redox-active phosphine ligands for metal catalysts. The development of these molecules can significantly affect the advancement of chemical science.
四硫富瓦烯(TTF)及其类似物是材料科学中引人注目的分子,因为它们具有优异的电子给体能力。本个人述评描述了通过钯催化的 TTF 类似物外围修饰来合成用于功能材料的 TTF 类似物的最新进展。我们首先考虑了三种类型的分子:荧光团-TTF 杂化分子、多氧化还原体系和金属-有机骨架的有机配体。这些分子通过 Stille 偶联或钯催化的直接 C-H 芳基化成功合成,并阐明了它们的结构、电化学和光学性质。随后,成功合成了磷取代的 TTF 类似物,以用于金属催化剂中氧化还原活性膦配体的未来应用。这些分子的发展可以显著影响化学科学的进步。