Abstract

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.

Highlights

  • P-C bond bond creation creationand andits itsuse useininsynthetic synthetic chemistry offer a wide range of possibility of design chemistry offer a wide range of possibility of design and and development of organophosphorus exciting organophosphorus flame Conventional retardants

  • Synthetic methodologies methodologies Michael addition, Michaelis–Arbuzov, Friedels–Crafts and Grignard reactions are the most commonly used in academics for development of P-C bonded flame retardants

  • Catalytic reactions, microwave technology, photo initiated reactions, etc. are increasingly used by researchers to synthesize P-C containing organophosphorus compounds; these techniques are seldom utilized in development of flame retardant compounds

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Summary

Introduction

P-C containing organophosphorus compounds find application as metal complex catalysts [1], reagents in organic chemistry [2,3], pesticides, insecticides, herbicides, medicine and biological systems [4], additives for polymers [5], surfactants, lubricants [6], surface treatments on metals [7], etc. These phosphorus species further decompose to release reactive phosphorus species, which interact with the combustion intermediates in the gas phase as flame inhibitors [19,20] In most cases, such interactions lead to recombination of the H and OH radicals and prevent their oxidation P-C bond containing phosphorus compounds like any organophosphorus flame retardants can exhibit either condensed phase or gas phase flame inhibition and is very specific to a polymer/flame retardant combination. Due to nature of theimpetus phosphorus atom,toxic the organophosphorus compounds in the organic gave and starting materials with more benign alternatives [31]. Flame retardant development is an applied research with a great potential for commercial exploitation and attention must be paid to the synthetic strategies for upscaling.

Flame Retardants with P-Caliphatic Bonds
Substitution Reactions
94 HBretardant and BKZ-VB
Addition Reactions
Phosphinic
Cyclic
Michaelis–Arbuzov Type Reactions and Rearrangement
Synthetic
Grignard Type Reaction
Grignard
14. Chemical structures of about
Friedel–Crafts Type Reactions
94 V-2while and V-0
Synthesis
ItItadopted behavior in the temperature range
Phospho-Fries Rearrangement
Findings
Conclusions
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