Wendels Sophie, Chavez Thiebault, Bonnet Martin, Salmeia Khalifah A, Gaan Sabyasachi
Additives and Chemistry Group, Advanced Fibers, Empa, Swiss Federal Laboratories for Materials Science and Technology, Lerchenfeldstrasse 5, 9014 St. Gallen, Switzerland.
Materials (Basel). 2017 Jul 11;10(7):784. doi: 10.3390/ma10070784.
Organophosphorus compounds containing P-C bonds are increasingly developed as flame retardant additives due to their excellent thermal and hydrolytic stability and ease of synthesis. The latest development (since 2010) in organophosphorus flame retardants containing P-C bonds summarized in this review. In this review, we have broadly classified such phosphorus compounds based on the carbon unit linked to the phosphorus atom i.e., could be a part of either an aliphatic or an aromatic unit. We have only considered those published literature where a P-C bond was created as a part of synthetic strategy to make either an intermediate or a final organophosphorus compound with an aim to use it as a flame retardant. General synthetic strategies to create P-C bonds are briefly discussed. Most popular synthetic strategies used for developing P-C containing phosphorus based flame retardants include Michael addition, Michaelis-Arbuzov, Friedels-Crafts and Grignard reactions. In general, most flame retardant derivatives discussed in this review have been prepared via a one- to two-step synthetic strategy with relatively high yields greater than 80%. Specific examples of P-C containing flame retardants synthesized via suitable synthetic strategy and their applications on various polymer systems are described in detail. Aliphatic phosphorus compounds being liquids or low melting solids are generally applied in polymers via coatings (cellulose) or are incorporated in the bulk of the polymers (epoxy, polyurethanes) during their polymerization as reactive or non-reactive additives. Substituents on the P atoms and the chemistry of the polymer matrix greatly influence the flame retardant behavior of these compounds (condensed phase vs. the gas phase). Recently, aromatic DOPO based phosphinate flame retardants have been developed with relatively higher thermal stabilities (>250 °C). Such compounds have potential as flame retardants for high temperature processable polymers such as polyesters and polyamides. A vast variety of P-C bond containing efficient flame retardants are being developed; however, further work in terms of their economical synthetic methods, detailed impact on mechanical properties and processability, long term durability and their toxicity and environmental impact is much needed for their potential commercial exploitations.
由于含磷-碳(P-C)键的有机磷化合物具有出色的热稳定性和水解稳定性且易于合成,它们作为阻燃添加剂的应用日益广泛。本综述总结了含P-C键的有机磷阻燃剂的最新进展(自2010年起)。在本综述中,我们根据与磷原子相连的碳单元,即该碳单元可以是脂肪族或芳香族单元的一部分,对这类磷化合物进行了大致分类。我们仅考虑了那些将形成P-C键作为合成策略的一部分,以制备中间体或最终有机磷化合物并旨在将其用作阻燃剂的已发表文献。本文简要讨论了形成P-C键的一般合成策略。用于开发含P-C键的磷基阻燃剂的最常用合成策略包括迈克尔加成反应、米氏-阿尔布佐夫反应、傅克反应和格氏反应。一般来说,本综述中讨论的大多数阻燃衍生物都是通过一到两步合成策略制备的,产率相对较高,大于80%。详细描述了通过合适的合成策略合成的含P-C键阻燃剂的具体实例及其在各种聚合物体系中的应用。脂肪族磷化合物为液体或低熔点固体,通常通过涂层(纤维素)应用于聚合物中,或在聚合过程中作为反应性或非反应性添加剂掺入聚合物本体(环氧树脂、聚氨酯)中。磷原子上的取代基和聚合物基体的化学性质极大地影响了这些化合物的阻燃行为(凝聚相和气相)。最近,已开发出热稳定性相对较高(>250°C)的基于芳香族9,10-二氢-9-氧杂-10-磷杂菲-10-氧化物(DOPO)的次膦酸酯阻燃剂。这类化合物有潜力作为聚酯和聚酰胺等高温度可加工聚合物的阻燃剂。目前正在开发各种各样含高效P-C键的阻燃剂;然而,就其经济的合成方法、对机械性能和加工性能的详细影响、长期耐久性以及它们的毒性和环境影响而言,要实现其潜在的商业开发,还需要开展更多工作。