nanocrystalline ceramic
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Materials ◽  
2021 ◽  
Vol 14 (19) ◽  
pp. 5565
Author(s):  
Matthew A. Duarte ◽  
Vivek Mishra ◽  
Chris Dames ◽  
Yasuhiro Kodera ◽  
Javier E. Garay

Producing bulk AlN with grain sizes in the nano regime and measuring its thermal conductivity is an important milestone in the development of materials for high energy optical applications. We present the synthesis and subsequent densification of nano-AlN powder to produce bulk nanocrystalline AlN. The nanopowder is synthesized by converting transition alumina (δ-Al2O3) with <40 nm grain size to AlN using a carbon free reduction/nitridation process. We consolidated the nano-AlN powder using current activated pressure assisted densification (CAPAD) and achieved a relative density of 98% at 1300 °C with average grain size, d¯~125 nm. By contrast, high quality commercially available AlN powder yields densities ~75% under the same CAPAD conditions. We used the 3-ω method to measure the thermal conductivity, κ of two nanocrystalline samples, 91% dense, d¯ = 110 nm and 99% dense, d¯ = 220 nm, respectively. The dense sample with 220 nm grains has a measured κ = 43 W/(m·K) at room temperature, which is relatively high for a nanocrystalline ceramic, but still low compared to single crystal and large grain sized polycrystalline AlN which can exceed 300 W/(m·K). The reduction in κ in both samples is understood as a combination of grain boundary scattering and porosity effects. We believe that these are finest d¯ reported in bulk dense AlN and is the first report of thermal conductivity for AlN with ≤220 nm grain size. The obtained κ values are higher than the vast majority of conventional optical materials, demonstrating the advantage of AlN for high-energy optical applications.


Author(s):  
Jan Mrazek ◽  
Petr Varak ◽  
Jan Aubrecht ◽  
Sona Vytykacova ◽  
Yauhen Baravets ◽  
...  

2020 ◽  
Vol 182 ◽  
pp. 57-61 ◽  
Author(s):  
Zhangyi Huang ◽  
Jirui Deng ◽  
Haomin Wang ◽  
Yutong Zhang ◽  
Junjing Duan ◽  
...  

Author(s):  
P. N. Anantharamaiah ◽  
B Prerna Rao ◽  
HM Shashanka ◽  
Jac Arout Chelvane ◽  
Vijay Khopkar ◽  
...  

The effect of Mg and In substitution on the structural, magnetic, magnetostrictive and dielectric properties of NiFe2O4 samples derived through sintering of nanocrystalline ceramic powders are investigated. Namely, NiFe2O4, NiMg0.2Fe1.8O4...


2019 ◽  
Vol 3 (8) ◽  
Author(s):  
Haw-Wen Hsiao ◽  
Shu Li ◽  
Karin A. Dahmen ◽  
Jian-Min Zuo

Author(s):  
Jan Mrazek ◽  
Ivan Kasik ◽  
Jan Aubreckt ◽  
Ondrej Podrazky ◽  
Jaknb Cajzl ◽  
...  

2019 ◽  
Vol 5 (1) ◽  
pp. 603-606
Author(s):  
Almaw Ayele Aniley ◽  
S.K. Naveen Kumar ◽  
A. Akshaya Kumar

Here, NiMn2O4 and NiZn0.2Mn1.8O4 nanocrystalline ceramic powders are fabricated, characterized, and compared for thermistor applications. Solution route was used to synthesize the materials. The NiMn2O4 is a spinel single crystal material with the average crystallite size 26.82 nm and a particle size less than 1 μm and has uniform morphology. The EDS results confirmed the composition of NiMn2O4 that consisted of Ni, Mn, and O2 only. The average crystallite size of NiZn0.2Mn1.8O4 is 37.48 nm and the particle size is less than 0.5 μm. There has been observed some agglomeration formation due to high calcination temperature. The β-value of NiMn2O4 is larger than NiZn0.2Mn1.8O4, hence thermistors constructed from NiMn2O4 are more stable and applicable as NTCR thermistor powder.


2019 ◽  
Vol 10 ◽  
pp. 46-51
Author(s):  
N.S. ChitraPriya ◽  
K. Sandhya ◽  
P.K. Aswathy ◽  
Deepthi N. Rajendran

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