Isolation and Characterization of Sulfonium-Ylide-Stabilized Palladium Carbenes

IF 2.9 3区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR Organometallics Pub Date : 2024-12-17 DOI:10.1021/acs.organomet.4c00418
Martin Stang,  and , Suzanne A. Blum*, 
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Abstract

Isolable sulfonium-ylide-stabilized palladium carbene complexes were synthesized through palladium(II)-induced cyclization of 1,2-alkynylarylsulfanes. X-ray crystallographic analysis characterized the maintenance of a palladium +2 oxidation state, with carbene-carbon–palladium bond lengths of 1.95 Å, indicating a partial double-bond character. These endocyclic sulfonium ylide carbenes represent the first characterized and/or isolable examples of this ligand class; such groups were previously proposed as reaction intermediates during cyclization–carbonylation reactions. A variety of palladium(II) complexes bearing sulfonium-ylide carbene ligands, with differing substituents, were synthesized, and the structure and stability of these complexes in solution were analyzed by 1H and 13C NMR spectroscopy, revealing reversibility and a stability dependence on substituents. The chirality of the sulfur heteroatom and the overall properties these ligands provide a potential electronic and steric alternative to existing carbene ligands, which could facilitate the future development of complementary metal-based reactivity.

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磺化吡啶稳定钯羰基化合物的分离与表征
通过钯(II)诱导1,2-炔芳基砜环化,合成了可分离的磺酰基稳定钯碳配合物。x射线晶体学分析表明,碳-碳-钯的键长为1.95 Å,显示出部分双键特征。这些内环磺酰碳烯代表了这类配体的第一个被表征和/或可分离的例子;这些基团以前被认为是环化-羰基化反应中的反应中间体。合成了多种含不同取代基的磺酰基羰基钯配合物,并用1H和13C NMR分析了这些配合物在溶液中的结构和稳定性,揭示了其可逆性和稳定性对取代基的依赖性。硫杂原子的手性和这些配体的整体性质为现有的碳配体提供了一种潜在的电子和立体替代品,这将促进互补金属基反应性的未来发展。
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来源期刊
Organometallics
Organometallics 化学-无机化学与核化学
CiteScore
5.60
自引率
7.10%
发文量
382
审稿时长
1.7 months
期刊介绍: Organometallics is the flagship journal of organometallic chemistry and records progress in one of the most active fields of science, bridging organic and inorganic chemistry. The journal publishes Articles, Communications, Reviews, and Tutorials (instructional overviews) that depict research on the synthesis, structure, bonding, chemical reactivity, and reaction mechanisms for a variety of applications, including catalyst design and catalytic processes; main-group, transition-metal, and lanthanide and actinide metal chemistry; synthetic aspects of polymer science and materials science; and bioorganometallic chemistry.
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