The active site of ethanol formation from syngas over Cu4 cluster modified MoS2 catalyst: A theoretical investigation

2021 ◽  
Vol 540 ◽  
pp. 148301
Author(s):  
Jiawang Chen ◽  
Zhanhui Wang ◽  
Juan Zhao ◽  
Lixia Ling ◽  
Riguang Zhang ◽  
...  
2011 ◽  
Vol 50 (6) ◽  
pp. 1439-1443 ◽  
Author(s):  
Özlen F. Erdem ◽  
Lennart Schwartz ◽  
Matthias Stein ◽  
Alexey Silakov ◽  
Sandeep Kaur-Ghumaan ◽  
...  

2018 ◽  
Vol 20 (4) ◽  
pp. 2492-2507 ◽  
Author(s):  
Wei Wang ◽  
Ye Wang ◽  
Gui-Chang Wang

The selectivity of ethanol formation are in the order of Fe3Cu6/Fe(100) > Fe3Pd6/Fe(100) > Fe9/Fe(100) > Cu9/Fe(100).


RSC Advances ◽  
2019 ◽  
Vol 9 (20) ◽  
pp. 11385-11395
Author(s):  
Wenjie Qi ◽  
Zehao Huang ◽  
Zheming Chen ◽  
Lijuan Fu ◽  
Zhigang Zhang

Density functional theory and measurements of rate are used to provide evidence for the rate determining step and requirements of the active site for CH4 combustion on Pd–Pt bimetallic catalysts in five different distinct kinetic regimes.


2018 ◽  
Vol 20 (3) ◽  
pp. 1693-1706 ◽  
Author(s):  
Raffaella Breglia ◽  
Claudio Greco ◽  
Piercarlo Fantucci ◽  
Luca De Gioia ◽  
Maurizio Bruschi

The extraordinary capability of [NiFe]-hydrogenases to catalyse the reversible interconversion of protons and electrons into dihydrogen (H2) has stimulated numerous experimental and theoretical studies addressing the direct utilization of these enzymes in H2 production processes.


Author(s):  
Kathleen B. Reuter

The reaction rate and efficiency of piperazine to 1,4-diazabicyclo-octane (DABCO) depends on the Si/Al ratio of the MFI topology catalysts. The Al was shown to be the active site, however, in the Si/Al range of 30-200 the reaction rate increases as the Si/Al ratio increases. The objective of this work was to determine the location and concentration of Al to explain this inverse relationship of Al content with reaction rate.Two silicalite catalysts in the form of 1/16 inch SiO2/Al2O3 bonded extrudates were examined: catalyst A with a Si/Al of 83; and catalyst B, the acid/phosphate Al extracted form of catalyst A, with a Si/Al of 175. Five extrudates from each catalyst were fractured in the transverse direction and particles were obtained from the fracture surfaces near the center of the extrudate diameter. Particles were also obtained from the outside surfaces of five extrudates.


2019 ◽  
Vol 476 (21) ◽  
pp. 3333-3353 ◽  
Author(s):  
Malti Yadav ◽  
Kamalendu Pal ◽  
Udayaditya Sen

Cyclic dinucleotides (CDNs) have emerged as the central molecules that aid bacteria to adapt and thrive in changing environmental conditions. Therefore, tight regulation of intracellular CDN concentration by counteracting the action of dinucleotide cyclases and phosphodiesterases (PDEs) is critical. Here, we demonstrate that a putative stand-alone EAL domain PDE from Vibrio cholerae (VcEAL) is capable to degrade both the second messenger c-di-GMP and hybrid 3′3′-cyclic GMP–AMP (cGAMP). To unveil their degradation mechanism, we have determined high-resolution crystal structures of VcEAL with Ca2+, c-di-GMP-Ca2+, 5′-pGpG-Ca2+ and cGAMP-Ca2+, the latter provides the first structural basis of cGAMP hydrolysis. Structural studies reveal a typical triosephosphate isomerase barrel-fold with substrate c-di-GMP/cGAMP bound in an extended conformation. Highly conserved residues specifically bind the guanine base of c-di-GMP/cGAMP in the G2 site while the semi-conserved nature of residues at the G1 site could act as a specificity determinant. Two metal ions, co-ordinated with six stubbornly conserved residues and two non-bridging scissile phosphate oxygens of c-di-GMP/cGAMP, activate a water molecule for an in-line attack on the phosphodiester bond, supporting two-metal ion-based catalytic mechanism. PDE activity and biofilm assays of several prudently designed mutants collectively demonstrate that VcEAL active site is charge and size optimized. Intriguingly, in VcEAL-5′-pGpG-Ca2+ structure, β5–α5 loop adopts a novel conformation that along with conserved E131 creates a new metal-binding site. This novel conformation along with several subtle changes in the active site designate VcEAL-5′-pGpG-Ca2+ structure quite different from other 5′-pGpG bound structures reported earlier.


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