AbstractHere we decipher the molecular determinants for the extreme toughness of spider silk fibers. Our bottom-up computational approach incorporates molecular dynamics and finite element simulations. Therefore, the approach allows the analysis of the internal strain distribution and load-carrying motifs in silk fibers on scales of both molecular and continuum mechanics. We thereby dissect the contributions from the nanoscale building blocks, the soft amorphous and the strong crystalline subunits, to silk fiber mechanics. We identify the amorphous subunits not only to give rise to high elasticity, but to also ensure efficient stress homogenization through the friction between entangled chains, which also allows the crystals to withstand st...
Natural spider and worm silks can provide key insights into bio-polymer technology. No-one would hav...
Spider silk is a self-assembling biopolymer that outperforms most known materials in terms of its me...
Orb-weaving spiders produce capture-webs from two mechanically distinct silk types, major ampullate ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Civil and Environmental Enginee...
AbstractThe outstanding mechanical toughness of silk fibers is thought to be caused by embedded crys...
Silk is an exceptionally strong, extensible, and tough material made from simple protein building bl...
AbstractThe time-dependent stress-strain behavior of spider dragline silk was already observed decad...
Spider silk is one of the strongest, most extensible and toughest biological materials known, exceed...
Silk is an ancient but remarkably strong, extensible and tough material made from simple protein bui...
Spider silk rivals the best synthetic materials in terms of strength and toughness. It is widely acc...
AbstractIn this article, we propose a microstructure-based continuum model to describe the material ...
Spider silk is a fascinating natural composite material. Its combination of strength and toughness i...
Spider dragline silk shows the highest toughness in comparison to all other known natural or man-mad...
This work establishes a tensegrity model of spider dragline silk. Tensegrity systems are ubiquitous ...
Spider silk is a fascinating natural composite material. Its combination of strength and toughness i...
Natural spider and worm silks can provide key insights into bio-polymer technology. No-one would hav...
Spider silk is a self-assembling biopolymer that outperforms most known materials in terms of its me...
Orb-weaving spiders produce capture-webs from two mechanically distinct silk types, major ampullate ...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Civil and Environmental Enginee...
AbstractThe outstanding mechanical toughness of silk fibers is thought to be caused by embedded crys...
Silk is an exceptionally strong, extensible, and tough material made from simple protein building bl...
AbstractThe time-dependent stress-strain behavior of spider dragline silk was already observed decad...
Spider silk is one of the strongest, most extensible and toughest biological materials known, exceed...
Silk is an ancient but remarkably strong, extensible and tough material made from simple protein bui...
Spider silk rivals the best synthetic materials in terms of strength and toughness. It is widely acc...
AbstractIn this article, we propose a microstructure-based continuum model to describe the material ...
Spider silk is a fascinating natural composite material. Its combination of strength and toughness i...
Spider dragline silk shows the highest toughness in comparison to all other known natural or man-mad...
This work establishes a tensegrity model of spider dragline silk. Tensegrity systems are ubiquitous ...
Spider silk is a fascinating natural composite material. Its combination of strength and toughness i...
Natural spider and worm silks can provide key insights into bio-polymer technology. No-one would hav...
Spider silk is a self-assembling biopolymer that outperforms most known materials in terms of its me...
Orb-weaving spiders produce capture-webs from two mechanically distinct silk types, major ampullate ...