Influence of the Iron Proportion on the Efficiency of an Oil-Soluble Ni–Fe Catalyst Applied in the Co-liquefaction of Lignite and Heavy Residue

2019 ◽  
Vol 58 (41) ◽  
pp. 19072-19081 ◽  
Author(s):  
Tengfei Yang ◽  
Congcong Liu ◽  
Wenan Deng ◽  
Chuan Li ◽  
Liyong Gan ◽  
...  
Keyword(s):  
2019 ◽  
Author(s):  
Christopher J. Legacy ◽  
Frederick T. Greenaway ◽  
Marion Emmert

We report detailed mechanistic investigations of an iron-based catalyst system, which allows the α-C-H oxidation of a wide variety of amines, including acyclic tertiary aliphatic amines, to afford dealkylated or amide products. In contrast to other catalysts that affect α-C-H oxidations of tertiary amines, the system under investigation employs exclusively peroxy esters as oxidants. More common oxidants (e.g. tBuOOH) previously reported to affect amine oxidations via free radical pathways do not provide amine α-C-H oxidation products in combination with the herein described catalyst system. Motivated by this difference in reactivity to more common free radical systems, the investigations described herein employ initial rate kinetics, kinetic profiling, Eyring studies, kinetic isotope effect studies, Hammett studies, ligand coordination studies, and EPR studies to shed light on the Fe catalyst system. The obtained data suggest that the catalytic mechanism proceeds through C-H abstraction at a coordinated substrate molecule. This rate-determining step occurs either at an Fe(IV) oxo pathway or a 2-electron pathway at a Fe(II) intermediate with bound oxidant. We further show via kinetic profiling and EPR studies that catalyst activation follows a radical pathway, which is initiated by hydrolysis of PhCO3 tBu to tBuOOH in the reaction mixture. Overall, the obtained mechanistic data support a non-classical, Fe catalyzed pathway that requires substrate binding, thus inducing selectivity for α-C-H functionalization.<br>


2020 ◽  
Vol 92 (6) ◽  
pp. 977-984
Author(s):  
Mayya V. Kulikova ◽  
Albert B. Kulikov ◽  
Alexey E. Kuz’min ◽  
Anton L. Maximov

AbstractFor previously studied Fischer–Tropsch nanosized Fe catalyst slurries, polymer compounds with or without polyconjugating structures are used as precursors to form the catalyst nanomatrix in situ, and several catalytic experiments and X-ray diffraction and atomic force microscopy measurements are performed. The important and different roles of the paraffin molecules in the slurry medium in the formation and function of composite catalysts with the two types of aforementioned polymer matrices are revealed. In the case of the polyconjugated polymers, the alkanes in the medium are “weakly” coordinated with the metal-polymer composites, which does not affect the effectiveness of the polyconjugated polymers. Otherwise, alkane molecules form a “tight” surface layer around the composite particles, which create transport complications for the reagents and products of Fischer-Tropsch synthesis and, in some cases, can change the course of the in situ catalyst formation.


2021 ◽  
Vol 764 ◽  
pp. 138282
Author(s):  
Aikaterini Gemenetzi ◽  
Panagiota Stathi ◽  
Yiannis Deligiannakis ◽  
Maria Louloudi

Catalysts ◽  
2021 ◽  
Vol 11 (6) ◽  
pp. 697
Author(s):  
Tae-Young Kim ◽  
Seongbin Jo ◽  
Yeji Lee ◽  
Suk-Hwan Kang ◽  
Joon-Woo Kim ◽  
...  

Fe-Ni and Co-Fe-Ni catalysts were prepared by the wet impregnation method for the production of high-calorific synthetic natural gas. The influence of Ni addition to Fe and Co-Fe catalyst structure and catalytic performance was investigated. The results show that the increasing of Ni amount in Fe-Ni and Co-Fe-Ni catalysts increased the formation of Ni-Fe alloy. In addition, the addition of nickel to the Fe and Co-Fe catalysts could promote the dispersion of metal and decrease the reduction temperature. Consequently, the Fe-Ni and Co-Fe-Ni catalysts exhibited higher CO conversion compared to Fe and Co-Fe catalysts. A higher Ni amount in the catalysts could increase C1–C4 hydrocarbon production and reduce the byproducts (C5+ and CO2). Among the catalysts, the 5Co-15Fe-5Ni/γ-Al2O3 catalyst affords a high light hydrocarbon yield (51.7% CH4 and 21.8% C2–C4) with a low byproduct yield (14.1% C5+ and 12.1% CO2).


2015 ◽  
Vol 274 ◽  
pp. 50-60 ◽  
Author(s):  
Goran N. Jovanovic ◽  
James E. Atwater ◽  
Polona Žnidaršič-Plazl ◽  
Igor Plazl
Keyword(s):  

2013 ◽  
Vol 28 (14) ◽  
pp. 1972-1975 ◽  
Author(s):  
Dawei Li ◽  
Lujun Pan ◽  
Kun Liu ◽  
Wei Peng ◽  
Rashad Muhammad

RSC Advances ◽  
2015 ◽  
Vol 5 (126) ◽  
pp. 103989-103998 ◽  
Author(s):  
Ying Wang ◽  
Yange Yu ◽  
Caolin Deng ◽  
Jinggang Wang ◽  
Bo-Tao Zhang

A new heterogeneous Fenton catalyst, rGO-Fe/MCM-41, was developed. The incorporation of rGO was benefit for the activity of the catalyst.


Fuel ◽  
2020 ◽  
Vol 259 ◽  
pp. 116303
Author(s):  
Tengfei Yang ◽  
Congcong Liu ◽  
Chuan Li ◽  
Liyong Gan ◽  
Wenan Deng ◽  
...  

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