Influence of Low and High Temperature Coking of H-GaMFI Propane Aromatization Catalyst on Its Surface and Catalytic Properties

1997 ◽  
Vol 166 (2) ◽  
pp. 380-383 ◽  
Author(s):  
V.R. Choudhary ◽  
A.K. Kinage ◽  
P. Devadas ◽  
C. Sivadinarayana ◽  
M. Guisnet
2013 ◽  
Vol 745-746 ◽  
pp. 636-641 ◽  
Author(s):  
Ning Li ◽  
Ping Hu ◽  
Xing Hong Zhang ◽  
Wen Bo Han

This paper presented the application of microwave-discharge plasma apparatus which was used to evaluate the catalytic properties of ZrB2-based ultra-high temperature ceramics in the simulated real service environment by the wall temperature response method based on the heat balance principle. The results showed that the material composition had a significant influence on the catalytic properties of ZrB2-based ultra-high temperature ceramics, and the catalytic activity of ZrB2-SiC composites with Cr addition had been increased significantly. The relationship between catalytic properties of ZrB2-based ultra-high temperature ceramics and surface composition was discussed in detail. The composition optimization was considered to be a very effective way to inhibit the recombination reactions of dissociated atoms on the surface of ultra-high temperature ceramics.


2002 ◽  
Vol 223 (1-2) ◽  
pp. 187-193 ◽  
Author(s):  
Koji Nishi ◽  
Shin-ichi Komai ◽  
Kazumi Inagaki ◽  
Atsushi Satsuma ◽  
Tadashi Hattori

Author(s):  
Alexis Nzila

Contamination of the environment by petroleum products is a growing concern worldwide, and strategies to remove these contaminants have been evaluated. One of these strategies is biodegradation, which consists of the use of microorganisms. Biodegradation is significantly improved by increasing the temperature of the medium, thus, the use of thermophiles, microbes that thrive in high-temperature environments, will render this process more efficient. For instance, various thermophilic enzymes have been used in industrial biotechnology because of their unique catalytic properties. Biodegradation has been extensively studied in the context of mesophilic microbes, and the mechanisms of biodegradation of aliphatic and aromatic petroleum hydrocarbons have been elucidated. However, in comparison, little work has been carried out on the biodegradation of petroleum hydrocarbons by thermophiles. In this paper, a detailed review of the degradation of petroleum hydrocarbons (both aliphatic and aromatic) by thermophiles was carried out. This work has identified the characteristics of thermophiles, and unraveled specific catabolic pathways of petroleum products that are only found with thermophiles. Gaps that limit our understanding of the activity of these microbes have also been highlighted, and, finally, different strategies that can be used to improve the efficiency of degradation of petroleum hydrocarbons by thermophiles were proposed.


RSC Advances ◽  
2017 ◽  
Vol 7 (47) ◽  
pp. 29563-29574 ◽  
Author(s):  
Omkar V. Zore ◽  
Paritosh Pande ◽  
Oghenenyerovwo Okifo ◽  
Ashis K. Basu ◽  
Rajeswari M. Kasi ◽  
...  

We report a general approach for the synthesis of multi enzyme–polymer conjugates (MECs) consisting of five different enzymes of diverse isoelectric points and distinct catalytic properties conjugated within a single universal polymer scaffold.


2005 ◽  
Vol 475-479 ◽  
pp. 755-758 ◽  
Author(s):  
Ya Xu ◽  
Satoshi Kameoka ◽  
Kyosuke Kishida ◽  
Masahiko Demura ◽  
An Pong Tsai ◽  
...  

Ni3Al has attractive high temperature properties, such as high strength and good oxidation/corrosion resistance, and is possible to be used for high temperature chemical processing and manufacture. Until now, the catalytic properties of Ni3Al were rarely investigated since the leaching of aluminum from Ni3Al is difficult to obtain a porous Raney-Ni compared to NiAl3 and Ni2Al3. In the present work, the catalytic properties of Ni3Al were examined for hydrogen production reactions from methanol. It was found that alkali-leached Ni3Al showed high activity for methanol decomposition (CH3OH→ 2H2+CO). Furthermore, Ni3Al catalysts suppress the formation of methane, i.e. they show higher selectivity for the methanol decomposition reaction than Ni catalyst. These results indicate a possibility for Ni3Al used as a catalyst for hydrogen production reaction.


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