Ab Initio Calculations of Conformational Effects on 13C NMR Spectra of Amorphous Polymers by R. Born, H.W. Spiess ; edited by J. Seelig.

The elucidation of the structure of amorphous systems is one of the most challenging problems of condensed-matter research. Our lack of knowledge about the detailed structure of disordered systems on the molecular level contrasts with the rapidly growing importance of such materials in science and t...

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Bibliographic Details
Main Authors: Born, R. (Author), Spiess, H.W (Author)
Corporate Author: SpringerLink (Online service)
Other Authors: Seelig, J. (Editor)
Format: eBook
Language:English
Published: Berlin, Heidelberg : Springer Berlin Heidelberg : Imprint: Springer, 1997.
Edition:1st ed. 1997.
Series:NMR Basic Principles and Progress, 35
Springer eBook Collection.
Subjects:
Online Access:Click to view e-book
Holy Cross Note:Loaded electronically.
Electronic access restricted to members of the Holy Cross Community.

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505 0 |a From the contents: Introduction -- Notions and Concepts in Chain Molecules and Quantum Chemistry -- Method of ab initio Simulation of Solid State NMR Spectra -- The Example of Atactic Poly(propylene) -- Some Remarks on the Method -- Application to Other Polymers -- Conclusion. 
520 |a The elucidation of the structure of amorphous systems is one of the most challenging problems of condensed-matter research. Our lack of knowledge about the detailed structure of disordered systems on the molecular level contrasts with the rapidly growing importance of such materials in science and technology. Solid state NMR is of key importance in this area, since it can provide detailed information about internuclear distances and torsional angles in crystals and glasses alike. Common examples of amorphous systems are glassy polymers. There, structural information is encoded in the chemical shifts of 13C-NMR spectra. This volume presents a powerful new approach to unravel this information by combining polymer statistical models, quantum chemistry and solid state NMR. It reviews the present state of the art, reports previously unpublished results, and indicates ways for further development in the future. 
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