𝔖 Bobbio Scriptorium
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Thiuram-accelerated sulfur vulcanization. II. The formation of crosslink precursors

✍ Scribed by M. Geyser; W. J. McGill


Book ID
102654935
Publisher
John Wiley and Sons
Year
1996
Tongue
English
Weight
567 KB
Volume
60
Category
Article
ISSN
0021-8995

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✦ Synopsis


SYNOPSIS

2,3-Dibutyl-2-butene (TME) was used as a model for polyisoprene in studying the formation of pendent groups that act as precursors to crosslink formation during tetramethylthiuram disulfide (TMTD)-accelerated sulfur vulcanization. TME was heated at 130Β°C with TMTD, TMTD/sulfur, and TMTD/sulfur/ZnO in sealed tubes for various times, after which the mixture was analyzed by HPLC. Tetramethylthiuram monosulfide (TMTM) and tetramethylthiuram polysulfides (TMTP) formed rapidly. The rate a t which these bound to the network could not be accounted for in terms of a free-radical mechanism, and a concerted mechanism was proposed. Dimethyldithiocarbamic acid (Hdmtc), a product of pendent group formation, is stable a t vulcanization temperatures and does not decompose to dimethylamine. Instead, it exchanges with thiuram pendent groups. The resultant thiol pendent groups are unreactive and their formation delays the onset of crosslinking. After a few minutes at 130"C, there appears to be no further increase in the number of pendent groups, but this is due to the thiol groups being undetectable in the HPLC analyzer. 0 1996


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Thiuram-accelerated sulfur vulcanization
✍ M. Geyser; W. J. McGill πŸ“‚ Article πŸ“… 1996 πŸ› John Wiley and Sons 🌐 English βš– 625 KB

## SYNOPSIS 2,3-Dimethyl-2-butene (TME) was used as a model for polyisoprene in studying the formation of crosslinks in tetramethylthiuram disulfide (TMTD)-accelerated sulfur vulcanization. Mixtures of T M E with TMTD, sulfur, and ZnO were heated in sealed tubes a t 130Β°C for various times and the

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Mixtures of tetramethylthiuram disulfide (TMTD)/ZnO and TMTD/sulfur/ZnO were heated in a DSC to various temperatures. Zinc dimethyldithiocarbamate (Zn,(dmtc)J formed only in undried TMTD/ZnO mixes, the reaction being catalyzed by water on the ZnO surface. The presence of ZnO delays the decomposition