hydrogenation selectivity
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2021 ◽  
Author(s):  
Minda Chen ◽  
Yu Yan ◽  
Mebatsion Gebre ◽  
Claudio Ordonez ◽  
Fudong Liu ◽  
...  

Author(s):  
Swetlana Schauermann ◽  
Carsten Schröder ◽  
Marvin C. Schmidt ◽  
Philipp A. Haugg ◽  
Ann-Katrin Baumann ◽  
...  

2021 ◽  
Author(s):  
Swetlana Schauermann ◽  
Carsten Schröder ◽  
Marvin C. Schmidt ◽  
Philipp A. Haugg ◽  
Ann-Katrin Baumann ◽  
...  

Fuel ◽  
2021 ◽  
Vol 290 ◽  
pp. 120037
Author(s):  
Xuandong Liu ◽  
Lei Li ◽  
Huayang Sun ◽  
Guangming Wen ◽  
Dan Wang ◽  
...  

Catalysts ◽  
2021 ◽  
Vol 11 (2) ◽  
pp. 179
Author(s):  
Roman M. Mironenko ◽  
Elina R. Saybulina ◽  
Liudmila N. Stepanova ◽  
Tatiana I. Gulyaeva ◽  
Mikhail V. Trenikhin ◽  
...  

The hydrogenation of unsaturated double bonds with molecular hydrogen is an efficient atom-economic approach to the production of a wide range of fine chemicals. In contrast to a number of reducing reagents typically involved in organic synthesis, hydrogenation with H2 is much more sustainable since it does not produce wastes (i.e., reducing reagent residues). However, its full sustainable potential may be achieved only in the case of easily separable catalysts and high reaction selectivity. In this work, various Pd/C catalysts were used for the liquid-phase hydrogenation of O-, S-, and N-vinyl derivatives with molecular hydrogen under mild reaction conditions (room temperature, pressure of 1 MPa). Complete conversion and high hydrogenation selectivity (>99%) were achieved by adjusting the type of Pd/C catalyst. Thus, the proposed procedure can be used as a sustainable method for vinyl group transformation by hydrogenation reactions. The discovery of the stability of active vinyl functional groups conjugated with heteroatoms (O, S, and N) under hydrogenation conditions over Pd/C catalysts opens the way for many useful transformations.


Catalysts ◽  
2021 ◽  
Vol 11 (2) ◽  
pp. 168
Author(s):  
Zheng Zuo ◽  
Xinzheng Yang

The mechanistic insights into hydrogenations of hex-5-en-2-one, isoprene, and 4-vinylcyclohex-1-ene catalyzed by pincer (MesCCC)Co (Mes = bis(mesityl-benzimidazol-2-ylidene)phenyl) complexes are computationally investigated by using the density functional theory. Different from a previously proposed mechanism with a cobalt dihydrogen complex (MesCCC)Co-H2 as the catalyst, we found that its less stable dihydride isomer, (MesCCC)Co(H)2, is the real catalyst in those catalytic cycles. The generations of final products with H2 cleavages for the formations of C−H bonds are the turnover-limiting steps in all three hydrogenation reactions. We found that the hydrogenation selectivity of different C=C bonds in the same compound is dominated by the steric effects, while the hydrogenation selectivity of C=C and C=O bonds in the same compound could be primarily influenced by the electronic effects. In addition, the observed inhabition of the hydrogenation reactions by excessive addition of PPh3 could be explained by a 15.8 kcal/mol free energy barrier for the dissociation of PPh3 from the precatalyst.


Author(s):  
Nikolay Cherkasov ◽  
Dmitry Murzin ◽  
C. Richard A. Catlow ◽  
Arunabhiram Chutia

We study the alkyne semi-hydrogenation selectivity over Pd and Lindlar catalyst with liquid-phase adsorption. The results indicate that there are strongly-adsorbing alkyne and alkene sites; alkenes react non-selectively over the...


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