Pdを尋問する (II) 二機能化学探査機を用いたアニオン転化:トランスメタレーションスイッチ
John J Molloy1, Ciaran P Seath1, Matthew J West1
1Department of Pure and Applied Chemistry, University of Strathclyde , 295 Cathedral Street, Glasgow G1 1XL, U.K.
Journal of the American Chemical Society
|December 20, 2017
まとめ
この研究は,パラジウム (II) 複合体のリガンド転移を制御することで,クロスカップリング反応の方向性を明らかにする. これにより,スズキ・ミヤウラまたはミゾロキ・ヘック製品と複雑なカーボサイクルを選択的に合成することができます.
科学分野:
- 有機金属化学
- 合成有機化学
背景:
- パラジウム (II) 複合体のリガンド転移は,交互結合反応に不可欠である.
- これらのメタテシス現象を理解し制御することは,反応経路を導くための鍵です.
研究 の 目的:
- パラジウム (II) 複合体のハライド→OHアニオン転移を調査する.
- メタテシスに影響を与える要因を特定し,クロスカップリング経路を制御する.
- カスケード反応で合成の有用性を証明するために
主な方法:
- ビニルBPインを二機能化学探査機として使った.
- パラジウム (II) 依存のクロスカップリング経路を研究した.
- アニオン転移と伝達に影響を与える変数を分析した.
主要な成果:
- ハリド→OHアニオン転移を制御する主要な変数
- スズキ-ミヤウラとミゾロキ-ヘック経路を切り替える
- ステロイドのような構造を含む,ボリレイテッドおよびボリレイテッドでないカルボサイクルの選択的合成が,カスケード反応によって達成される.
結論:
- リガンド転移は,パラジアム触媒によるクロスカップリング結果を制御するスイッチを提供します.
- この戦略により,多様な炭酸塩基構造の効率的な合成が可能になります.
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