By Abadie, M.J.M.; Rusanov, A.L.

Polyimides are very sturdy, effortless to computer and feature unparalleled warmth and chemical resistance. also they are hugely insulative and don't contaminate their atmosphere. Their power and warmth and chemical resistance are so nice that they're usually used to interchange glass and metals, comparable to metal, in lots of hard commercial purposes. Polyimides are even utilized in many daily purposes. they're utilized in automobiles either externally and internally simply because they could stand up to the serious warmth and the corrosive lubricants, fuels, and coolants present in vehicles. also they are utilized in the development of many home equipment in addition to microwave cookware and meals packaging as a result of their thermal balance, resistance to oils, greases, and fat and their transparency to microwave radiation. they could even be utilized in circuit forums, insulation, fibres for protecting garments, composites, and adhesives. This file covers the synthesis of polyimides from chloral and trinitrotoluene and stories the creation of recent kinds of polyimides combining reliable thermal, mechanical and electric homes with more desirable processability. it's excellent when you paintings with polyimides, both generating them or these utilizing them to fabricate different items. it will likely be of curiosity to these in either academia and undefined.

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Serushkina, Polymer Science, Series B, 2006, 48, 7-8, 209. 47. L. Y. G. A. D. A. Vatsadze, Polymer Science, Series B, 2006, 48, 5-6, 109. 43 Practical Guide to Polyimides 44 5 Polyimides Based on TNT-Derived Diamines Trinitrotoluene (TNT)-based aromatic diamines are used for the preparation of substituted polyimides. Interest in substituted polyimides is very understandable due to the known poor tractability of unsubstituted aromatic polyimides [1–4]. As is known, the introduction of methoxy substituents to macromolecules of polyimides enhances their solubility in organic solvents [5].

A. D. A. Y. L. Rusanov, Russian Chemical Bulletin, 1998, 47, 8, 1623. 11. A. D. A. Y. L. G. P. A. Askadskii, Polymer Preprints, 1998, 39, 2, 851. 12. L. G. P. A. D. A. Y. Sapozhnikov, High Performance Polymers, 1999, 11, 4, 395. 13. L. G. P. A. V. A. D. A. Y. Sapozhnikov, Polymer Science, Series B, 1999, 41, 7-8, 238. 14. L. G. P. A. A. D. A. Y. M. Abadie and B. 89. 15. L. G. P. A. D. A. Y. 1. 16. F. E. Zahler, Chemical Reviews, 1951, 49, 2, 273. 41 Practical Guide to Polyimides 17. , H. 1. 18.

A. A. L. K. T. 62. 36. L. G. P. A. D. V. Serushkina, Polymer Science, Series B, 2002, 44, 11-12, 284. 37. L. G. P. A. D. V. M. Abadie and B. 63. 38. L. G. P. A. A. D. Kh. V. S. M. Y. Voitekunas in Proceedings of a Symposium on Polyimides and Other High Temperature Polymers: Synthesis, Characterisation and Applications, Ed. L. 25. 39. A. K. I. S. Vorob’ev, Synthetic Communications, 2002, 31, 17, 2557. 40. L. G. P. A. Kh. S. Vorob’ev, Polymer Science, Series B, 2001, 43, 7-8, 223. 41. L. G. P. A.

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