Post-Modification of Mesoporous Silica with Different Nitrogenous Bases for Immobilization of Manganese Porphyrin: Synthesis, Characterization and Catalytic Activity

2021 ◽  
Author(s):  
Fatemeh Nejabat ◽  
Saeed Rayati ◽  
Atena Kavian ◽  
Farzaneh Rouhani ◽  
Mostafa M. Amini

2021 ◽  
Author(s):  
Israel T. Pulido-Díaz ◽  
Alejandro Serrano-Maldonado ◽  
Carlos César López-Suárez ◽  
Pedro A. Méndez-Ocampo ◽  
Benjamín Portales-Martínez ◽  
...  

RhNPs supported on mesoporous silica functionalized with nicotinamide groups provided active hydrogenation catalysts for several functional groups, wherein the shape and size of the RhNPs are maintained after catalysis.



2005 ◽  
Vol 86 (1-3) ◽  
pp. 198-206 ◽  
Author(s):  
Svatopluk Chytil ◽  
Wilhelm R. Glomm ◽  
Elisabeth Vollebekk ◽  
Håkon Bergem ◽  
John Walmsley ◽  
...  


2016 ◽  
Vol 6 (1) ◽  
Author(s):  
Min-Ho Jin ◽  
Duckkyu Oh ◽  
Ju-Hyoung Park ◽  
Chun-Boo Lee ◽  
Sung-Wook Lee ◽  
...  


Nano Letters ◽  
2008 ◽  
Vol 8 (7) ◽  
pp. 2027-2034 ◽  
Author(s):  
Wenyu Huang ◽  
John N. Kuhn ◽  
Chia-Kuang Tsung ◽  
Yawen Zhang ◽  
Susan E. Habas ◽  
...  


2017 ◽  
Vol 46 (29) ◽  
pp. 9577-9590 ◽  
Author(s):  
Nabanita Pal ◽  
Indrani Mukherjee ◽  
Sriparna Chatterjee ◽  
Eun-Bum Cho

A series of Ce–Ti-doped mesoporous silica materials have been prepared under basic conditions. The materials played a pivotal role in visible-light-induced degradation of toxic Rhodamine B.



2010 ◽  
Vol 322 (1-2) ◽  
pp. 50-54 ◽  
Author(s):  
Yingjun Feng ◽  
Liang Li ◽  
Yongsheng Li ◽  
Wenru Zhao ◽  
Jinlou Gu ◽  
...  


Nano Research ◽  
2013 ◽  
Vol 6 (12) ◽  
pp. 871-879 ◽  
Author(s):  
Junchen Chen ◽  
Renyuan Zhang ◽  
Lu Han ◽  
Bo Tu ◽  
Dongyuan Zhao


2013 ◽  
Vol 136-137 ◽  
pp. 269-277 ◽  
Author(s):  
Zhijun Huang ◽  
Fengbo Li ◽  
Bingfeng Chen ◽  
Tao Lu ◽  
Yin Yuan ◽  
...  


Reactions ◽  
2020 ◽  
Vol 1 (2) ◽  
pp. 195-209
Author(s):  
Yanyong Liu

A low-density polyethylene was hydrocracked to liquid hydrocarbons in autoclave reactors over catalysts containing Pt- and Al-modified MCM-48. Two kinds of Al-modified MCM-48 were synthesized for the reaction: Al-MCM-48 was synthesized using a sol–gel method by mixing Al(iso-OC3H7)3 with Si(OC2H5)4 and surfactant in a basic aqueous solution before hydrothermal synthesis, and Al/MCM-48 was synthesized using a post-modification method by grafting Al3+ ions on the surface of calcined Al/MCM-48. X-ray diffraction (XRD) patterns indicated that both Al-MCM-48 and Al/MCM-48 had a cubic mesoporous structure. The Brunauer–Emmett–Teller (BET) surface areas of Al-MCM-48 and Al/MCM-48 were larger than 1000 m2/g. 27Al Magic Angle Spinning-NMR (MAS NMR) indicated that Al3+ in Al-MCM-48 was located inside the framework of mesoporous silica, but Al3+ in Al/MCM-48 was located outside the framework of mesoporous silica. The results of ammonia temperature-programmed desorption (NH3-TPD) showed that the acidic strength of various samples was in the order of H-Y > Al/MCM-48 > Al-MCM-48 > MCM-48. After 4 MPa H2 was charged in the autoclave at room temperature, 1 wt % Pt/Al/MCM-48 catalyst showed a high yield of C9−C15 jet fuel range hydrocarbons of 85.9% in the hydrocracking of polyethylene at 573 K for 4 h. Compared with the reaction results of Pt/Al/MCM-48, the yield of light hydrocarbons (C1−C8) increased over Pt/H-Y, and the yield of heavy hydrocarbons (C16−C21) increased over Pt/Al-MCM-48 in the hydrocracking of polyethylene. The yield of C9−C15 jet fuel range hydrocarbons over the used catalyst did not decrease compared to the fresh catalyst in the hydrocracking of polyethylene to jet fuel range hydrocarbons over Pt/Al/MCM-48.



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