AbstractThe time-dependent stress-strain behavior of spider dragline silk was already observed decades ago, and has been attributed to the disordered sequences in silk proteins, which compose the soft amorphous matrix. However, the actual molecular origin and magnitude of internal friction within the amorphous matrix has remained inaccessible, because experimentally decomposing the mechanical response of the amorphous matrix from the embedded crystalline units is challenging. Here, we used atomistic molecular dynamics simulations to obtain friction forces for the relative sliding of peptide chains of Araneus diadematus spider silk within bundles of these chains as a representative unit of the amorphous matrix in silk fibers. We computed the...
Silk fibers are outstandingly tough biomaterials, a result of the controlled self-assembly of their ...
AbstractSpider silk is well-known for its outstanding mechanical properties. However, there is a sig...
Orb-weaving spiders produce capture-webs from two mechanically distinct silk types, major ampullate ...
AbstractThe time-dependent stress-strain behavior of spider dragline silk was already observed decad...
AbstractHere we decipher the molecular determinants for the extreme toughness of spider silk fibers....
Spiders spin their silk from an aqueous solution to a solid fiber in ambient conditions. However, to...
AbstractThe outstanding mechanical toughness of silk fibers is thought to be caused by embedded crys...
AbstractIn this article, we propose a microstructure-based continuum model to describe the material ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Civil and Environmental Enginee...
Spider silk is a self-assembling biopolymer that outperforms most known materials in terms of its me...
International audienceThe causes of the variability in mechanical behaviour of various silks obtaine...
Spider silk is one of the strongest, most extensible and toughest biological materials known, exceed...
True stress-true strain curves of naturally spun viscid line fibers retrieved directly from the spir...
Raman spectroscopy is used to elucidate the effect of spinning conditions upon the structure and mec...
The molecular dynamics of the proteins that comprise spider dragline silk were investigated with sol...
Silk fibers are outstandingly tough biomaterials, a result of the controlled self-assembly of their ...
AbstractSpider silk is well-known for its outstanding mechanical properties. However, there is a sig...
Orb-weaving spiders produce capture-webs from two mechanically distinct silk types, major ampullate ...
AbstractThe time-dependent stress-strain behavior of spider dragline silk was already observed decad...
AbstractHere we decipher the molecular determinants for the extreme toughness of spider silk fibers....
Spiders spin their silk from an aqueous solution to a solid fiber in ambient conditions. However, to...
AbstractThe outstanding mechanical toughness of silk fibers is thought to be caused by embedded crys...
AbstractIn this article, we propose a microstructure-based continuum model to describe the material ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Civil and Environmental Enginee...
Spider silk is a self-assembling biopolymer that outperforms most known materials in terms of its me...
International audienceThe causes of the variability in mechanical behaviour of various silks obtaine...
Spider silk is one of the strongest, most extensible and toughest biological materials known, exceed...
True stress-true strain curves of naturally spun viscid line fibers retrieved directly from the spir...
Raman spectroscopy is used to elucidate the effect of spinning conditions upon the structure and mec...
The molecular dynamics of the proteins that comprise spider dragline silk were investigated with sol...
Silk fibers are outstandingly tough biomaterials, a result of the controlled self-assembly of their ...
AbstractSpider silk is well-known for its outstanding mechanical properties. However, there is a sig...
Orb-weaving spiders produce capture-webs from two mechanically distinct silk types, major ampullate ...