Self-assembling patchy colloidal particles form a promising platform to create designer soft materials. To dress such systems with mechanical functionality, one can take inspiration from biological structures such as the cell's cytoskeleton, which consists of semiflexible filaments, whose mechanical behavior give the cell its unique mechanical properties. Here we present mechanical experiments on analogs of biological fibers, semiflexible "colloidal polymers"made from bonded patchy colloidal particles. We use optical tweezers to probe their extreme mechanics under increasingly high compressions and we reveal a rich nonlinear mechanical response involving buckling, viscoelastic creep, and ultimately break-up. We characterize and model this r...
With the goal of ultimately deciphering the design principles for biomimetic materials that can auto...
153 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2006.In this thesis, we investigat...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
Self-assembling patchy colloidal particles form a promising platform to create designer soft materia...
The viscoelastic properties of filaments and biopolymers play a crucial role in soft and biological ...
The vast majority of soft and biological materials, gels, and tissues are made from micrometer-size ...
The vast majority of soft and biological materials, gels, and tissues are made from micrometer-size ...
The vast majority of soft and biological materials, gels, and tissues are made from micrometer-size ...
A network of semiflexible biopolymers, known as the cytoskeleton, and molecular motors play fundamen...
Despite their notorious diversity, biological cells are mechanically well characterized by only a fe...
International audienceColloidal gels are formed through the aggregation of attractive particles, who...
We study the evolution of the elastic shear modulus of weakly aggregated colloidal particles during ...
The viscoelasticity of the crosslinked semiflexible polymer networks—such as the internal cytoskelet...
Softness is an essential mechanical feature of macromolecular particles such as polymer-grafted nano...
Softness is an essential mechanical feature of macromolecular particles such as polymer-grafted nano...
With the goal of ultimately deciphering the design principles for biomimetic materials that can auto...
153 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2006.In this thesis, we investigat...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...
Self-assembling patchy colloidal particles form a promising platform to create designer soft materia...
The viscoelastic properties of filaments and biopolymers play a crucial role in soft and biological ...
The vast majority of soft and biological materials, gels, and tissues are made from micrometer-size ...
The vast majority of soft and biological materials, gels, and tissues are made from micrometer-size ...
The vast majority of soft and biological materials, gels, and tissues are made from micrometer-size ...
A network of semiflexible biopolymers, known as the cytoskeleton, and molecular motors play fundamen...
Despite their notorious diversity, biological cells are mechanically well characterized by only a fe...
International audienceColloidal gels are formed through the aggregation of attractive particles, who...
We study the evolution of the elastic shear modulus of weakly aggregated colloidal particles during ...
The viscoelasticity of the crosslinked semiflexible polymer networks—such as the internal cytoskelet...
Softness is an essential mechanical feature of macromolecular particles such as polymer-grafted nano...
Softness is an essential mechanical feature of macromolecular particles such as polymer-grafted nano...
With the goal of ultimately deciphering the design principles for biomimetic materials that can auto...
153 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2006.In this thesis, we investigat...
The cytoskeleton is a highly adaptive network of filamentous proteins capable of stiffening under st...