Deutsch
 
Hilfe Datenschutzhinweis Impressum
  DetailsucheBrowse

Datensatz

 
 
DownloadE-Mail
  Molecular mechanistic origin of the toughness of natural adhesives, fibres and composites

Smith, B. L., Schaeffer, T. E., Viani, M., Thompson, J. B., Frederick, N. A., Kindt, J., et al. (1999). Molecular mechanistic origin of the toughness of natural adhesives, fibres and composites. Nature, 399, 761-763.

Item is

Dateien

einblenden: Dateien
ausblenden: Dateien
:
600659.pdf (Verlagsversion), 296KB
Name:
600659.pdf
Beschreibung:
-
OA-Status:
Sichtbarkeit:
Öffentlich
MIME-Typ / Prüfsumme:
application/pdf / [MD5]
Technische Metadaten:
Copyright Datum:
-
Copyright Info:
-
Lizenz:
-

Externe Referenzen

einblenden:

Urheber

einblenden:
ausblenden:
 Urheber:
Smith, B. L., Autor
Schaeffer, T. E.1, Autor           
Viani, M., Autor
Thompson, J. B., Autor
Frederick, N. A., Autor
Kindt, J., Autor
Belcher, A., Autor
Stucky, G. D., Autor
Morse, D. E., Autor
Hansma, P. K., Autor
Affiliations:
1Department of Molecular Biology, MPI for biophysical chemistry, Max Planck Society, ou_578628              

Inhalt

einblenden:
ausblenden:
Schlagwörter: Mussel byssus; Titin; Domains; Growth; Nacre; Silk
 Zusammenfassung: Natural materials are renowned for their strength and toughness(1-5). Spider dragline silk has a breakage energy per unit weight two orders of magnitude greater than high tensile steel(1,6), and is representative of many other strong natural fibres(3,7,8). The abalone shell, a composite of calcium carbonate plates sandwiched between organic material, is 3,000 times more fracture resistant than a single crystal of the pure mineral(4,5). The organic component, comprising just a few per cent of the composite by weight(9), is thought to hold the key to nacre's fracture toughness(10,11). Ceramics laminated with organic material are more fracture resistant than non-laminated ceramics(11,12), but synthetic materials made of interlocking ceramic tablets bound by a few weight per cent of ordinary adhesives do not have a toughness comparable to nacre(13). We believe that the key to nacre's fracture resistance resides in the polymer adhesive, and here we reveal the properties of this adhesive by using the atomic force microscope(14) to stretch the organic molecules exposed on the surface of freshly cleaved nacre. The adhesive fibres elongate in a stepwise manner as folded domains or loops are pulled open. The elongation events occur for forces of a few hundred piconewtons, which are smaller than the forces of over a nanonewton required to break the polymer backbone in the threads. We suggest that this 'modular' elongation mechanism might prove to be quite general for conveying toughness to natural fibres and adhesives, and we predict that it might be found also in dragline silk.

Details

einblenden:
ausblenden:
Sprache(n): eng - English
 Datum: 2005-08-051999
 Publikationsstatus: Erschienen
 Seiten: -
 Ort, Verlag, Ausgabe: -
 Inhaltsverzeichnis: -
 Art der Begutachtung: Expertenbegutachtung
 Identifikatoren: eDoc: 236914
Anderer: 11481
 Art des Abschluß: -

Veranstaltung

einblenden:

Entscheidung

einblenden:

Projektinformation

einblenden:

Quelle 1

einblenden:
ausblenden:
Titel: Nature
Genre der Quelle: Zeitschrift
 Urheber:
Affiliations:
Ort, Verlag, Ausgabe: -
Seiten: - Band / Heft: 399 Artikelnummer: - Start- / Endseite: 761 - 763 Identifikator: -