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Advanced Ceramic Coatings and Materials for Extreme by Hua-Tay Lin, Taejin Hwang, Soshu Kirihara, Sujanto Widjaja PDF

By Hua-Tay Lin, Taejin Hwang, Soshu Kirihara, Sujanto Widjaja

ISBN-10: 1118807553

ISBN-13: 9781118807552

Ceramic Engineering and technological know-how lawsuits quantity 34, factor three - Advanced Ceramic Coatings and fabrics for severe Environments III 

A choice of 12 papers from the yankee Ceramic Society’s thirty seventh overseas convention on complicated Ceramics and Composites, held in Daytona seashore, Florida, January 27-February 1, 2013. This factor contains papers provided within the complicated Ceramic Coatings and platforms and subsequent iteration applied sciences for cutting edge floor Coatings
symposia.

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Additional info for Advanced Ceramic Coatings and Materials for Extreme Environments III: Ceramic Engineering and Science Proceedings, Volume 34 Issue 3

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15405 nm), and near surface structure and texture determination using reflection high energy electron diffraction (RHEED) surface pole technique developed in our lab. The principle, measurement, 32 • Advanced Ceramic Coatings and Materials for Extreme Environments III Dynamic Oblique Angle Deposition of Nanostructures for Energy Applications and construction of such RHEED surface pole figures have been described in details 4' 33. Transmission electron microscopy (TEM) was used to study the grain boundary in Ge and CdTe films and the interfaces of Ge/CaF2 and CdTe/CaF2 films.

The dispersion in the [111] out-of-plane orientation of the Ge film was approximately ±3 degrees. The Ge (111) pole figure shows two kinds of poles. One set of poles has a weak intensity, labeled as (111), (111) and (111) and the other set of poles is rotated by 180° with a strong intensity labeled as Figure 7. (a) SEM side view image of Ge/CaF2/glass grown at 400 °C substrate temperature by thermal vapor evaporation. From [41]. (b) X-ray {111} pole figure of the Ge film that rotates 180° about the [111] direction of CaF2.

If all the grains are oriented in the same direction, both the out-of-plane and in-plane directions with respect to the substrate, the film is basically a single crystal as shown in Fig. 2(d). To grow a single crystal film, one typically requires a single crystal substrate (and perhaps at an elevated temperature). In between these two extreme cases, there are many other possibilities. Figure 2. Various crystal orientations: (a) random orientation, (b) one-degree orientation or fiber, (c) two-degree orientation or biaxial, and (d) single-crystal orientation.

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Advanced Ceramic Coatings and Materials for Extreme Environments III: Ceramic Engineering and Science Proceedings, Volume 34 Issue 3 by Hua-Tay Lin, Taejin Hwang, Soshu Kirihara, Sujanto Widjaja


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