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HERO ID
6631464
Reference Type
Journal Article
Title
FREE-RADICAL EXIT IN EMULSION POLYMERIZATION .1. THEORETICAL-MODEL
Author(s)
Casey, BS; Morrison, BR; Maxwell, IA; Gilbert, RG; Napper, DH; ,
Year
1994
Is Peer Reviewed?
Yes
Journal
Journal of Polymer Science. Part A, Polymer Chemistry
ISSN:
0887-624X
EISSN:
1099-0518
Publisher
JOHN WILEY & SONS INC
Location
NEW YORK
Page Numbers
605-630
Web of Science Id
WOS:A1994MX67200002
Abstract
The exit or desorption of free radicals from latex particles is an important kinetic process in an emulsion polymerization. This article unites a successful theory of radical absorption (i.e., initiator efficiency), based on propagation in the aqueous phase being the rate determining step for entry of charged free radicals, with a detailed model of radical desorption. The result is a kinetic scheme applicable to true ''zero-one'' systems (i.e., where entry of a radical into a latex particle already containing a radical results in instantaneous termination), which is still, with a number of generally applicable assumptions, relatively simple. Indeed, in many physically reasonable limits, the kinetic representation reduces to a single rate equation. Specific experimental techniques of particular significance and methods of analysis of kinetic data are detailed and discussed. A methodology for both assessing the applicability of the model and its more probable limits, via use of known rate coefficients and theoretical predictions, is outlined and then applied to the representative monomers, styrene and methyl methacrylate. A detailed application of the theory and illustration of the methodology of model discrimination via experiment is contained in the second article of this series. (C) 1994 John Wiley & Sons, Inc.
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