Syntheses of bispyrazolyl monotriazolyl heteroscorpionate platinum(IV) complexes including an unusual Pt-CH2CH2-Pt bridge

IF 5.062
Katherine D. Lavoie, Bryan E. Frauhiger, Peter S. White, Joseph L. Templeton
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引用次数: 6

Abstract

Scorpionate ligands provide the benefit of hemilability while minimizing complete dissociation of the ligand. Previous investigations into Tp′PtLnXm complexes [Tp′ = hydridotris(3,5-dimethylpyrazolyl)borate] revealed the importance of hemilability as the Tp′ ligand facilitates Pt(II/IV) interconversions. Here we discuss the synthesis and metalation of a series of asymmetric scorpionate ligands bearing two pyrazolyl rings and one triazolyl ring. In addition to utilizing triazole donor arms with differing substituents, we also compare octahedral structures of Pt(IV) complexes with P = O and CH and BH caps at the pole of the facial tridentate umbrella. Oxidation from Pt(II) to Pt(IV) with electrophilic reagents, simple acids and acid chlorides, leads to isomers in some cases, and the binding properties of the various donor arms dictate the stereochemistry of the products. Investigations into the reactivity of heteroscorpionate tridentate ligands bound to platinum(II) led to CCl activation reactions with methylene chloride and 1,2-dichloroethane. Isolation of a dinuclear platinum complex bridged by an ethylene unit produced an unusual proton NMR AA′XX′ pattern in the 1H NMR spectrum due to chirality at each platinum center.

Abstract Image

含特殊Pt-CH2CH2-Pt桥的双吡唑基单三唑基异蝎酸铂配合物的合成
蝎酸配体提供半半性的好处,同时最大限度地减少配体的完全解离。先前对Tp ' ptlnxm配合物[Tp ' =水合硼酸酯(3,5-二甲基吡唑基)硼酸盐]的研究揭示了半半性的重要性,因为Tp '配体促进了Pt(II/IV)的相互转化。本文讨论了一系列含两个吡唑基环和一个三唑基环的不对称蝎酸配体的合成和金属化。除了利用具有不同取代基的三唑供体臂外,我们还比较了P = O的Pt(IV)配合物的八面体结构,以及在面三叉伞极的CH和BH帽。Pt(II)与亲电试剂、单酸和酸性氯化物氧化生成Pt(IV),在某些情况下生成同分异构体,并且各种给体臂的结合性质决定了产物的立体化学性质。研究了与铂(II)结合的异蝎酸三齿配体与二氯甲烷和1,2-二氯乙烷的CCl活化反应。由乙烯单元桥接的双核铂配合物的分离,由于每个铂中心的手性,在1H NMR谱中产生了不寻常的质子核磁共振AA ' xx '模式。
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来源期刊
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审稿时长
2.8 months
期刊介绍: The Journal of Molecular Catalysis A: Chemical publishes original, rigorous, and scholarly full papers that examine the molecular and atomic aspects of catalytic activation and reaction mechanisms in homogeneous catalysis, heterogeneous catalysis (including supported organometallic catalysis), and computational catalysis.
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