Bedoukian   RussellIPM   RussellIPM   Piezoelectric Micro-Sprayer


Home
Animal Taxa
Plant Taxa
Semiochemicals
Floral Compounds
Semiochemical Detail
Semiochemicals & Taxa
Synthesis
Control
Invasive spp.
References

Abstract

Guide

Alphascents
Pherobio
InsectScience
E-Econex
Counterpart-Semiochemicals
Print
Email to a Friend
Kindly Donate for The Pherobase

« Previous AbstractMolecular Composition of Oxygenated Organic Molecules and Their Contributions to Organic Aerosol in Beijing    Next AbstractNewly isolated Enterobacter cloacae sp. HN01 and Klebsiella pneumoniae sp. HN02 collaborate with self-secreted biosurfactant to improve solubility and bioavailability for the biodegradation of hydrophobic and toxic gaseous para-xylene »

Nanomaterials (Basel)


Title:Nanoarchitectonics of Ni/CeO(2) Catalysts: The Effect of Pretreatment on the Low-Temperature Steam Reforming of Glycerol
Author(s):Wang Y; Zhu S; He S; Lu J; Liu J; Lu H; Song D; Luo Y;
Address:"Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500, China. The Innovation Team for Volatile Organic Compounds Pollutants Control and Resource Utilization of Yunnan Province, Kunming 650500, China. The Higher Educational Key Laboratory for Odorous Volatile Organic Compounds Pollutants Control of Yunnan Province, Kunming 650500, China. Research Center for Analysis and Measurement, Kunming University of Science and Technology, Kunming 650093, China. Faculty of Chemical Engineering, Kunming University of Science and Technology, Kunming 650500, China"
Journal Title:Nanomaterials (Basel)
Year:2022
Volume:20220228
Issue:5
Page Number: -
DOI: 10.3390/nano12050816
ISSN/ISBN:2079-4991 (Print) 2079-4991 (Electronic) 2079-4991 (Linking)
Abstract:"CeO(2) nanosphere-supported nickel catalysts were prepared by the wetness impregnation method and employed for hydrogen production from glycerol steam reforming. The dried catalyst precursors were either reduced by H(2) after thermal calcination or reduced by H(2) directly without calcination. The catalysts that were reduced by H(2) without calcination achieved a 95% glycerol conversion at a reaction temperature of only 475 degrees C, and the catalytic stability was up to 35 h. However, the reaction temperature required of catalysts reduced by H(2) with calcination was 500 degrees C, and the catalysts was rapidly inactivated after 25 h of reaction. A series of physicochemical characterization revealed that direct H(2) reduction without calcination enhanced the concentration of oxygen vacancies. Thus, the nickel dispersion was improved, the nickel nanoparticle size was reduced, and the reduction of nickel was increased. Moreover, the high concentration of oxygen vacancy not only contributed to the increase of H(2) yield, but also effectively reduced the amount of carbon deposition. The increased active nickel surface area and oxygen vacancies synergistically resulted in the superior catalytic performance for the catalyst that was directly reduced by H(2) without calcination. The simple, direct hydrogen reduction method remarkably boosts catalytic performance. This strategy can be extended to other supports with redox properties and applied to heterogeneous catalytic reactions involving resistance to sintering and carbon deposition"
Keywords:direct H2 reduction glycerol steam reforming hydrogen production oxygen vacancies;
Notes:"PubMed-not-MEDLINEWang, Yunzhu Zhu, Songshan He, Sufang Lu, Jichang Liu, Jiangping Lu, Huihui Song, Di Luo, Yongming eng 21666013, 42030712, 21966018, 2210060708, 2216060105, 22106055/National Natural Science Foundation of China/ 202101AS070026/Key Project of Natural Science Foundation of Yunnan Province/ 202101AU070025, 202105AE160019/Applied Basic Research Foundation of Yunnan Province/ No. YNWR-QNBJ-2018-067/Yunnan Ten Thousand Talents Plan Young & Elite talents Project/ Switzerland 2022/03/11 Nanomaterials (Basel). 2022 Feb 28; 12(5):816. doi: 10.3390/nano12050816"

 
Back to top
 
Citation: El-Sayed AM 2024. The Pherobase: Database of Pheromones and Semiochemicals. <http://www.pherobase.com>.
© 2003-2024 The Pherobase - Extensive Database of Pheromones and Semiochemicals. Ashraf M. El-Sayed.
Page created on 26-06-2024