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铑催化下二炔的还原偶联反应生成荧光铑环戊二烯或磷光铑2,2'-联苯配合物。

Reductive Coupling of Diynes at Rhodium Gives Fluorescent Rhodacyclopentadienes or Phosphorescent Rhodium 2,2'-Biphenyl Complexes.

作者信息

Sieck Carolin, Tay Meng Guan, Thibault Marie-Hélène, Edkins Robert M, Costuas Karine, Halet Jean-François, Batsanov Andrei S, Haehnel Martin, Edkins Katharina, Lorbach Andreas, Steffen Andreas, Marder Todd B

机构信息

Institut für Anorganische Chemie, Julius-Maximilians-Universität Würzburg, Am Hubland, 97074, Würzburg, Germany.

Department of Chemistry, Durham University, South Road, Durham, DH1 3LE, UK.

出版信息

Chemistry. 2016 Jul 18;22(30):10523-32. doi: 10.1002/chem.201601912. Epub 2016 Jun 29.

Abstract

Reactions of [Rh(κ(2) -O,O-acac)(PMe3 )2 ] (acac=acetylacetonato) and α,ω-bis(arylbutadiynyl)alkanes afford two isomeric types of MC4 metallacycles with very different photophysical properties. As a result of a [2+2] reductive coupling at Rh, 2,5-bis(arylethynyl)rhodacyclopentadienes (A) are formed, which display intense fluorescence (Φ=0.07-0.54, τ=0.2-2.5 ns) despite the presence of the heavy metal atom. Rhodium biphenyl complexes (B), which show exceptionally long-lived (hundreds of μs) phosphorescence (Φ=0.01-0.33) at room temperature in solution, have been isolated as a second isomer originating from an unusual [4+2] cycloaddition reaction and a subsequent β-H-shift. We attribute the different photophysical properties of isomers A and B to a higher excited state density and a less stabilized T1 state in the biphenyl complexes B, allowing for more efficient intersystem crossing S1 →Tn and T1 →S0 . Control of the isomer distribution is achieved by modification of the bis- (diyne) linker length, providing a fundamentally new route to access photoactive metal biphenyl compounds.

摘要

[Rh(κ(2)-O,O-乙酰丙酮)(三甲基膦)₂](acac = 乙酰丙酮)与α,ω-双(芳基丁二炔基)烷烃反应生成两种具有非常不同光物理性质的异构体类型的MC₄金属环。由于Rh处发生[2 + 2]还原偶联,形成了2,5-双(芳基乙炔基)铑环戊二烯(A),尽管存在重金属原子,但它仍显示出强烈的荧光(Φ = 0.07 - 0.54,τ = 0.2 - 2.5 ns)。铑联苯配合物(B)在室温下于溶液中表现出异常长寿命(数百微秒)的磷光(Φ = 0.01 - 0.33),已作为源自异常[4 + 2]环加成反应及随后β-H迁移的第二种异构体被分离出来。我们将异构体A和B不同的光物理性质归因于联苯配合物B中更高的激发态密度和稳定性较差的T₁态,这使得系间窜越S₁→Tn和T₁→S₀更有效。通过修饰双(二炔)连接体长度实现异构体分布的控制,为获取光活性金属联苯化合物提供了一条全新的途径。

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