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Microstructural design of silicon nitride with improved fracture toughness: II. Effects of yttria and alumina additives

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TLDR
In this paper, the fracture resistance of self-reinforced silicon nitride ceramics has been improved by tailoring the chemistry of the intergranular amorphous phase.
Abstract
Significant improvements in the fracture resistance of self-reinforced silicon nitride ceramics have been obtained by tailoring the chemistry of the intergranular amorphous phase. First, the overall microstructure of the material was controlled by incorporation of a fixed amount of elongated s-Si3N4 seeds into the starting powder to regulate the size and fraction of the large reinforcing grains. With controlled microstructures, the interfacial debond strength between the reinforcement and the intergranular glass was optimized by varying the yttria-to-alumina ratio in the sintering additives. It was found that the steady-state fracture toughness value of these silicon nitrides increased with the Y:Al ratio of the oxide additives. The increased toughness was accompanied by a steeply rising R-curve and extensive interfacial debonding between the elongated s-Si3N4 grains and the intergranular glassy phase. Microstructural analyses indicate that the different fracture behavior is related to the Al (and O) content in the s´-SiAlON growth layer formed on the elongated s-Si3N4 grains during densification. The results imply that the interfacial bond strength is a function of the extent of Al and Si bonding with N and O in the adjoining phases with an abrupt structural/chemical interface achieved by reducing the Al concentration in both the intergranular phase and the s´-SiAlON growth layer. Analytical modeling revealed that the residual thermal expansion mismatch stress is not a dominant influence on the interfacial fracture behavior when a distinct s´-SiAlON growth layer forms. It is concluded that the fracture resistance of self-reinforced silicon nitrides can be improved by optimizing the sintering additives employed.

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Silicon Nitride and Related Materials

TL;DR: Silicon nitride has been researched intensively, largely in response to the challenge to develop internal combustion engines with hot-zone components made entirely from ceramics as mentioned in this paper, but this research effort has succeeded in generating a degree of understanding of silicon nitride and of its processing and properties.
Journal ArticleDOI

Microstructural Design of Silicon Nitride with Improved Fracture Toughness: I, Effects of Grain Shape and Size

TL;DR: The use of self-reinforcement by larger elongated grains in silicon nitride ceramics requires judicious control of the microstructure to achieve high steady-state toughness and high fracture strength as discussed by the authors.
Journal ArticleDOI

Ceramics for Prosthetic Hip and Knee Joint Replacement

TL;DR: The structure, properties, applications, and limitations of the ceramics that have been used in orthopedic bearings are reviewed, and the new ceramic composite materials and surface treatments that will be available for joint replacement surgery in the near future are described.
Journal ArticleDOI

Observation of rare-earth segregation in silicon nitride ceramics at subnanometre dimensions

TL;DR: Direct images of dopant atoms (La) within the nanometre-scale intergranular amorphous films typically found at grain boundaries are shown, indicating a strong preference of La for the crystalline surfaces, which is essential for forming elongated grains and a toughened microstructure.
Journal ArticleDOI

Origins and Applications of London Dispersion Forces and Hamaker Constants in Ceramics

TL;DR: In this paper, the authors used spectral or parametric optical properties of materials, combined with knowledge of the configuration of the materials, to determine the long-range van der Waals forces.
References
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The image processing handbook (2nd ed.)

TL;DR: A device for injecting medicament without the use of a needle is disclosed wherein medicament is expelled from the device at high pressure, caused to break the skin of a patient, and appropriately forced into the patient's body.
Journal ArticleDOI

Microstructural Design of Silicon Nitride with Improved Fracture Toughness: I, Effects of Grain Shape and Size

TL;DR: The use of self-reinforcement by larger elongated grains in silicon nitride ceramics requires judicious control of the microstructure to achieve high steady-state toughness and high fracture strength as discussed by the authors.
Journal ArticleDOI

Processing Strategy for Producing Highly Anisotropic Silicon Nitride

TL;DR: In this paper, a tape casting of raw powder slurry seeded with rod-like Si{sub 3}N{sub 4} particles was obtained, followed by a gas pressure sintering under 1 MPa nitrogen pressure.
Journal ArticleDOI

Microstructure Control of Silicon Nitride by Seeding with Rodlike β‐Silicon Nitride Particles

TL;DR: In this paper, the effect of seeding on microstructure development and mechanical properties of silicon nitride was investigated by the use of morphologically regulated rodlike β-Si3N4 singlecrystal particles with a diameter of 1 μm and a length of 4 μm as seed crystals.
Journal ArticleDOI

Grain Growth Studies of Silicon Nitride Dispersed in an Oxynitride Glass

TL;DR: Isothermal growth of [beta]-Si[sub 3]N[sub 4] crystals dispersed in an oxynitride glass (Y-Si-Al-O-N) was studied by electron microscopy after heat treatment at temperatures between 1,550 and 1,640 C for 1 to 18 h as discussed by the authors.
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