The effect of the catalyst and the type of ionic liquid on the hydrosilylation process under batch and continuous reaction conditions

2018 ◽  
Vol 42 (7) ◽  
pp. 5229-5236 ◽  
Author(s):  
M. Jankowska-Wajda ◽  
R. Kukawka ◽  
M. Smiglak ◽  
H. Maciejewski

We present a simplified method for performing the hydrosilylation reaction in a heterogeneous catalytic system with the use of ionic liquids and microreactor systems.

2015 ◽  
Vol 39 (2) ◽  
pp. 1348-1354 ◽  
Author(s):  
Ali Pourjavadi ◽  
Mojtaba Nazari-Chamazkoti ◽  
Seyed Hassan Hosseini

A new heterogeneous catalytic system was prepared by immobilization of tungstate ions on a cross-linked poly(ionic liquid) nanogel.


2007 ◽  
Vol 56 (8) ◽  
pp. 1487-1494 ◽  
Author(s):  
S. G. Zlotin ◽  
G. V. Kryshtal ◽  
G. M. Zhdankina ◽  
A. V. Bogolyubov ◽  
S. G. Postikova ◽  
...  

ChemInform ◽  
2008 ◽  
Vol 39 (25) ◽  
Author(s):  
S. G. Zlotin ◽  
G. V. Kryshtal ◽  
G. M. Zhdankina ◽  
A. V. Bogolyubov ◽  
S. G. Postikova ◽  
...  

Catalysts ◽  
2018 ◽  
Vol 8 (10) ◽  
pp. 467 ◽  
Author(s):  
Yubo Ma ◽  
Lei Wang ◽  
Hongyi Li ◽  
Tianfu Wang ◽  
Ronghui Zhang

In this work, a heterogeneous catalytic system consisting of [HO2CMMIm]Cl and ZrOCl2 in isopropanol is demonstrated to be effective for 5-hydroxymethylfurfural (HMF) synthesis with glucose as the feedstock. Various reaction conditions for HMF synthesis by glucose dehydration were investigated systematically. Under optimized reaction conditions, as high as 43 mol% HMF yield could be achieved. Increasing the water content to a level below 3.17% led to the production of HMF with a higher yield, while a lower HMF yield was observed when the water content was increased above 3.17%. In addition, the data also showed that ZrOCl2 could not only effectively convert glucose into intermediate species (which were not fructose, in contrast to the literature) but also catalyze the intermediate species’ in situ dehydration into HMF. [HO2CMMIm]Cl was used to catalyze the intermediate species’ in situ conversion to HMF. The kinetics data showed that a temperature increase accelerated the intermediate species’ dehydration reaction rate. The reaction of glucose dehydration was a strong endothermal reaction.


2021 ◽  
Vol 08 ◽  
Author(s):  
Vivek Srivastava

Background: Baylis-Hillman reaction suffers from the requirement of cheap starting materials, easy reaction protocol, possibility to create the chiral center in the reaction product has increased the synthetic efficacy of this reaction, and high catalyst loading, low reaction rate, and poor yield. Objective: The extensive use of various functional or non-functional ionic liquids (ILs) with organocatalyst increases the reaction rate of various organic transformations as a reaction medium and as a support to anchor the catalysts. Methods: In this manuscript, we have demonstrated the synthesis of quinuclidine-supported trimethylamine-based functionalized ionic liquid as a catalyst for the Baylis-Hillman reaction. Results: We obtained the Baylis-Hillman adducts in good, isolated yield, low catalyst loading, short reaction time, broad substrate scope, accessible product, and catalyst recycling. N-((E,3S,4R)-5-benzylidene-tetrahydro-4-hydroxy-6-oxo-2H-pyran-3-yl) palmitamide was also successfully synthesized using CATALYST-3 promoted Baylis-Hillman reaction. Conclusion: We successfully isolated the 25 types of Baylis-Hillman adducts using three different quinuclidine-supported ammonium-based ionic liquids such as Et3AmQ][BF4] (CATALYST-1), [Et3AmQ][PF6] (CATALYST-2), and [TMAAmEQ][NTf2](CATALYST-3) as new and efficient catalysts. Tedious and highly active N-((E,3S,4R)-5-benzylidene-tetrahydro-4-hydroxy-6-oxo-2H-pyran-3-yl) palmitamide derivative was also synthesized using CATALYST-3 followed by Baylis-Hillman reaction. Generally, all the responses demonstrated higher activity and yielded high competition with various previously reported homogenous and heterogeneous Catalytic systems. Easy catalyst and product recovery followed by six catalysts recycling were the added advantages of the prosed catalytic system.


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