Chemical Reactors And Processes Codexery

Emulsion polymerization

Radical polymerization in aqueous dispersion, producing latex particles.

Emulsion polymerization

Emulsion polymerization is a type of radical polymerization in polymer chemistry that typically begins with an emulsion of water, monomers, and surfactants. Despite its name, which arises from a historical misconception, polymerization occurs not in emulsion droplets but in spontaneously formed latex or colloid particles, usually around 100 nm in size. This process is used to produce several commercially important polymers, including synthetic rubbers and plastics, and its dispersions find applications in adhesives, paints, paper coatings, and textile coatings.

field
Polymer chemistry
known_for
Radical polymerization in aqueous dispersion; production of synthetic rubber and latexes
first_conceived_at
Bayer, before World War I
first_true_emulsion_polymerizations
1920s, for polymerizing isoprene
key_theory
Smith-Ewart-Harkins theory (1940s)

Lore & Background

The early history of emulsion polymerization is connected with synthetic rubber. The idea of using an emulsified monomer in an aqueous suspension was first conceived at Bayer before World War I, inspired by natural rubber's formation in dispersed particles stabilized by colloidal polymers. Early workers used naturally occurring polymers like gelatin, ovalbumin, and starch as stabilizers, though these were suspension polymerizations by today's definition. The first true emulsion polymerizations, using a surfactant and polymerization initiator, were conducted in the 1920s to polymerize isoprene. Over the next twenty years, through the end of World War II, efficient methods for producing several forms of synthetic rubber by emulsion polymerization were developed, but most disclosures were confined to patents or kept secret due to wartime needs.

Reader's Guide

Emulsion polymerization is significant because it allows high molecular weight polymers to be made at fast rates, overcoming the tradeoff between molecular weight and rate seen in bulk and solution polymerization. The continuous water phase conducts heat well, enabling fast rates without loss of temperature control, and the viscosity of the reaction medium remains low regardless of molecular weight. The final dispersion can often be used directly without further processing. However, surfactants and other adjuvants remain in the polymer and are difficult to remove, and water removal for dry polymers is energy-intensive. The process cannot be used for condensation, ionic, or Ziegler-Natta polymerization, with some exceptions. After World War II, emulsion polymerization was extended to plastics and latex paints, replacing solvent-based materials and reducing volatile organic compounds. The Smith-Ewart-Harkins theory, developed in the 1940s, provided the first successful explanation of the mechanism, though it does not predict behavior for water-soluble monomers like methyl methacrylate or vinyl acetate, where homogeneous nucleation occurs.

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