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Hydraulic fracture during epithelial stretching | Nature Materials
Hydraulic fracture during epithelial stretching | Nature Materials

Electrical switching of high-performance bioinspired nanocellulose  nanocomposites | Nature Communications
Electrical switching of high-performance bioinspired nanocellulose nanocomposites | Nature Communications

Deformation and Fracture Behaviour of Polymer Materials | SpringerLink
Deformation and Fracture Behaviour of Polymer Materials | SpringerLink

Ultrarobust, tough and highly stretchable self-healing materials based on  cartilage-inspired noncovalent assembly nanostructure | Nature  Communications
Ultrarobust, tough and highly stretchable self-healing materials based on cartilage-inspired noncovalent assembly nanostructure | Nature Communications

Prolonged in situ self-healing in structural composites via  thermo-reversible entanglement | Nature Communications
Prolonged in situ self-healing in structural composites via thermo-reversible entanglement | Nature Communications

CHAPTER 6 Strength, creep and fracture of polymers.ppt
CHAPTER 6 Strength, creep and fracture of polymers.ppt

Polymers | Free Full-Text | Fracture Failure Mechanisms of Long Single PA6  Fibers
Polymers | Free Full-Text | Fracture Failure Mechanisms of Long Single PA6 Fibers

A molecular design approach towards elastic and multifunctional polymer  electronics | Nature Communications
A molecular design approach towards elastic and multifunctional polymer electronics | Nature Communications

In situ mechanical reinforcement of polymer hydrogels via metal-coordinated  crosslink mineralization | Nature Communications
In situ mechanical reinforcement of polymer hydrogels via metal-coordinated crosslink mineralization | Nature Communications

A universal method to easily design tough and stretchable hydrogels | NPG  Asia Materials
A universal method to easily design tough and stretchable hydrogels | NPG Asia Materials

3D printing of inherently nanoporous polymers via polymerization-induced  phase separation | Nature Communications
3D printing of inherently nanoporous polymers via polymerization-induced phase separation | Nature Communications

3D printing of conducting polymers | Nature Communications
3D printing of conducting polymers | Nature Communications

Designing polymers for advanced battery chemistries | Nature Reviews  Materials
Designing polymers for advanced battery chemistries | Nature Reviews Materials

Material properties and applications of mechanically interlocked polymers |  Nature Reviews Materials
Material properties and applications of mechanically interlocked polymers | Nature Reviews Materials

Brittle Fracture - an overview | ScienceDirect Topics
Brittle Fracture - an overview | ScienceDirect Topics

Anti-fatigue-fracture hydrogels
Anti-fatigue-fracture hydrogels

Self-healing polymers | Nature Reviews Materials
Self-healing polymers | Nature Reviews Materials

Fracture toughness of a metal–organic framework glass | Nature  Communications
Fracture toughness of a metal–organic framework glass | Nature Communications

Bone-inspired enhanced fracture toughness of de novo fiber reinforced  composites | Scientific Reports
Bone-inspired enhanced fracture toughness of de novo fiber reinforced composites | Scientific Reports

On the damage tolerance of 3-D printed Mg-Ti interpenetrating-phase  composites with bioinspired architectures | Nature Communications
On the damage tolerance of 3-D printed Mg-Ti interpenetrating-phase composites with bioinspired architectures | Nature Communications

Polymers | Free Full-Text | Clay-Based Polymer Nanocomposites: Essential  Work of Fracture
Polymers | Free Full-Text | Clay-Based Polymer Nanocomposites: Essential Work of Fracture

Three-dimensional printing of hierarchical liquid-crystal-polymer  structures | Nature
Three-dimensional printing of hierarchical liquid-crystal-polymer structures | Nature

Fracture of Polymer Networks Containing Topological Defects | Macromolecules
Fracture of Polymer Networks Containing Topological Defects | Macromolecules

Fracture in polymers - Wikipedia
Fracture in polymers - Wikipedia

Topoarchitected polymer networks expand the space of material properties |  Nature Communications
Topoarchitected polymer networks expand the space of material properties | Nature Communications

Fracture of model end-linked networks | PNAS
Fracture of model end-linked networks | PNAS

Healable, memorizable, and transformable lattice structures made of stiff  polymers | NPG Asia Materials
Healable, memorizable, and transformable lattice structures made of stiff polymers | NPG Asia Materials