Abstract Nacre, a composite made from biogenic aragonite and proteins, exhibits excellent strength and toughness. Here, we show that nacreous sections can exhibit complete brittle fracture along the tablet interfaces at the proportional limit under pure shear stresses of torsion. We quantitatively separate the initial tablet sliding primarily resisted by nanoscale aragonite pillars from the following sliding resisted by various microscale toughening mechanisms. We postulate that the ductility of nacre can be limited by eliminating tablet interactions during crack propagations. Our findings should help pursuing further insights of layered materials by using torsion
Linear elastic fracture mechanics (LEFM) implies that crack-like flaws would intensify stress in bri...
Biological structures, such as nacre from mollusk shells exhibit a tremendous balance of strength an...
Nacre is a natural nanocomposite material with superior mechanical strength and toughness. What role...
Nacre, a composite made from biogenic aragonite and proteins, exhibits excellent strength and toughn...
Nacre, a natural composite consisting of biogenic aragonite and protein, possesses superior strength...
Nacre is a natural composite featuring exceptional mechanical properties such as high strength and h...
The structure and the toughening mechanism of nacre have been the subject of intensive research over...
The mechanical properties of nacre constituents from red abalone were investigated. Electron microsc...
Nacre (mother of pearl) is a self-assembled hierarchical nanocomposite in possession of exquisite mu...
For decades, nacre has inspired researchers because of its sophisticated hierarchical structure and ...
Nacre, also known as mother-of-pearl, is a biocomposite material that exhibits higher strength and f...
8 pagesInternational audienceThe combination of soft nanoscale organic components with inorganic nan...
Abstract Nacre, also known as mother-of-pearl, is a hard biological composite found in the inside la...
Engineering at nanoscale holds the promise of tuning materials with extraordinary properties. Howeve...
A strengthening mechanism arising from a type of inorganic nanostructure in the organic matrix layer...
Linear elastic fracture mechanics (LEFM) implies that crack-like flaws would intensify stress in bri...
Biological structures, such as nacre from mollusk shells exhibit a tremendous balance of strength an...
Nacre is a natural nanocomposite material with superior mechanical strength and toughness. What role...
Nacre, a composite made from biogenic aragonite and proteins, exhibits excellent strength and toughn...
Nacre, a natural composite consisting of biogenic aragonite and protein, possesses superior strength...
Nacre is a natural composite featuring exceptional mechanical properties such as high strength and h...
The structure and the toughening mechanism of nacre have been the subject of intensive research over...
The mechanical properties of nacre constituents from red abalone were investigated. Electron microsc...
Nacre (mother of pearl) is a self-assembled hierarchical nanocomposite in possession of exquisite mu...
For decades, nacre has inspired researchers because of its sophisticated hierarchical structure and ...
Nacre, also known as mother-of-pearl, is a biocomposite material that exhibits higher strength and f...
8 pagesInternational audienceThe combination of soft nanoscale organic components with inorganic nan...
Abstract Nacre, also known as mother-of-pearl, is a hard biological composite found in the inside la...
Engineering at nanoscale holds the promise of tuning materials with extraordinary properties. Howeve...
A strengthening mechanism arising from a type of inorganic nanostructure in the organic matrix layer...
Linear elastic fracture mechanics (LEFM) implies that crack-like flaws would intensify stress in bri...
Biological structures, such as nacre from mollusk shells exhibit a tremendous balance of strength an...
Nacre is a natural nanocomposite material with superior mechanical strength and toughness. What role...