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二十一世纪的膦酸盐化学:在有机磷合成中替代三氯化磷的可行选择。

Phosphinate chemistry in the 21st century: a viable alternative to the use of phosphorus trichloride in organophosphorus synthesis.

机构信息

Department of Chemistry, TCU Box 298860, Texas Christian University , Fort Worth, Texas 76129, United States.

出版信息

Acc Chem Res. 2014 Jan 21;47(1):77-87. doi: 10.1021/ar400071v. Epub 2013 Aug 2.

Abstract

Organophosphorus compounds are important in everyday applications ranging from agriculture to medicine and are used in flame retardants and other materials. Although organophosphorus chemistry is known as a mature and specialized area, researchers would like to develop new methods for synthesizing organophosphorus compounds to improve the safety and sustainability of these chemical processes. The vast majority of compounds that contain a phosphorus-carbon bond are manufactured using phosphorus trichloride (PCl3) as an intermediate. However, these reactions require chlorine, and researchers would like to avoid the use of PCl3 and develop safer chemistry that also decreases energy consumption and minimizes waste. Researchers have already proposed and discussed two primary strategies based on elemental phosphorus (P4 or Pred) or on phosphine (PH3) as alternatives to PCl3. However, phosphinates, an important class of phosphorus compounds defined as any compound with a phosphorus atom attached to two oxygens, R(1)R(2)P(O)(OR) (R(1)/R(2) = hydrogen/carbon), offer another option. This Account discusses the previously neglected potential of these phosphinates as replacements of PCl3 for the preparation of organophosphorus compounds. Because of their strong reductive properties, industry currently uses the simplest members of this class of compounds, hypophosphites, for one major application: electroless plating. In comparison with other proposed PCl3 surrogates, hypophosphorous derivatives can offer improved stability, lower toxicity, higher solubility, and increased atom economy. When their reducing power is harnessed to form phosphorus-carbon or phosphorus-oxygen bonds, these compounds are also rich and versatile precursors to organophosphorus compounds. This Account examines the use of transition metal-catalyzed reactions such as cross-coupling and hydrophosphinylation for phosphorus-carbon bond formation. Because the most important industrial organophosphorus compounds include compounds triply or quadruply bound to oxygen, I also discuss controlled transfer hydrogenation for phosphorus-oxygen bond formation. I hope that this Account will further promote research in this novel and exciting yet much underdeveloped area of phosphinate activation.

摘要

有机磷化合物在从农业到医学的日常应用中都很重要,它们被用于阻燃剂和其他材料中。尽管有机磷化学被认为是一个成熟和专业化的领域,但研究人员希望开发新的方法来合成有机磷化合物,以提高这些化学过程的安全性和可持续性。绝大多数含有磷-碳键的化合物都是使用三氯化磷 (PCl3) 作为中间体制造的。然而,这些反应需要氯气,研究人员希望避免使用 PCl3 并开发更安全的化学方法,同时减少能源消耗和最小化废物。研究人员已经提出并讨论了两种基于元素磷 (P4 或 Pred) 或磷化氢 (PH3) 的主要策略,作为 PCl3 的替代品。然而,膦酸盐作为磷化合物的一个重要类别,定义为任何含有一个磷原子与两个氧原子相连的化合物,R(1)R(2)P(O)(OR) (R(1)/R(2) = 氢/碳),提供了另一种选择。本综述讨论了这些膦酸盐作为 PCl3 的替代品在制备有机磷化合物方面以前被忽视的潜力。由于其较强的还原性质,工业界目前仅将该类化合物中最简单的成员次膦酸盐用于一种主要应用:化学镀。与其他提议的 PCl3 替代品相比,次膦酸衍生物可以提供更好的稳定性、更低的毒性、更高的溶解度和更高的原子经济性。当它们的还原能力被用于形成磷-碳或磷-氧键时,这些化合物也是丰富多样的有机磷化合物的前体。本综述考察了过渡金属催化反应(如交叉偶联和氢膦化)在形成磷-碳键方面的应用。由于最重要的工业有机磷化合物包括三重或四重键合到氧的化合物,我还讨论了磷-氧键形成的受控转移氢化。我希望本综述将进一步推动在膦酸盐活化这一新颖、令人兴奋但尚未充分发展的领域的研究。

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