scholarly journals Synergistic Effects in Bimetallic Palladium–Copper Catalysts Improve Selectivity in Oxygenate Coupling Reactions

2016 ◽  
Vol 138 (21) ◽  
pp. 6805-6812 ◽  
Author(s):  
Konstantinos A. Goulas ◽  
Sanil Sreekumar ◽  
Yuying Song ◽  
Purnima Kharidehal ◽  
Gorkem Gunbas ◽  
...  
2020 ◽  
Vol 49 (22) ◽  
pp. 8036-8064 ◽  
Author(s):  
Li-Jie Cheng ◽  
Neal P. Mankad

Copper catalysts enable cross-coupling reactions of unactivated alkyl electrophiles to generate C–C and C–X bonds.


Molecules ◽  
2020 ◽  
Vol 25 (20) ◽  
pp. 4634
Author(s):  
Yoshihide Usami ◽  
Yuya Tatsui ◽  
Hiroki Yoneyama ◽  
Shinya Harusawa

Alkylamino coupling reactions at the C4 positions of 4-halo-1H-1-tritylpyrazoles were investigated using palladium or copper catalysts. The Pd(dba)2 catalyzed C-N coupling reaction of aryl- or alkylamines, lacking a β-hydrogen atom, proceeded smoothly using tBuDavePhos as a ligand. As a substrate, 4-Bromo-1-tritylpyrazole was more effective than 4-iodo or chloro-1-tritylpyrazoles. Meanwhile, the CuI mediated C-N coupling reactions of 4-iodo-1H-1-tritylpyrazole were effective for alkylamines possessing a β-hydrogen atom.


2001 ◽  
Vol 66 (5) ◽  
pp. 1647-1656 ◽  
Author(s):  
Marieke P. R. Spee ◽  
Jaap Boersma ◽  
Michel D. Meijer ◽  
Martijn Q. Slagt ◽  
Gerard van Koten ◽  
...  

2019 ◽  
Vol 121 ◽  
pp. 19-26 ◽  
Author(s):  
Felipe Lange Coelho ◽  
Lucielle Codeim Dresch ◽  
Rafael Stieler ◽  
Leandra Franciscato Campo ◽  
Paulo Henrique Schneider

Synlett ◽  
2021 ◽  
Author(s):  
Juyeon Kang ◽  
Seung Hwan Ham ◽  
Chaehyeon Seong ◽  
Chang Ho Oh

We synthesized [6,6,6]- and [6,6,7]-tricyclic compounds via intramolecular [4+2] cycloaddition by gold or copper catalysts. Substrates for cyclization were prepared by coupling reactions between eight types of diyne and four types of aromatic moieties. We have successfully synthesized eleven tricyclic compounds.


Author(s):  
W.W. Adams ◽  
S. J. Krause

Rigid-rod polymers such as PBO, poly(paraphenylene benzobisoxazole), Figure 1a, are now in commercial development for use as high-performance fibers and for reinforcement at the molecular level in molecular composites. Spinning of liquid crystalline polyphosphoric acid solutions of PBO, followed by washing, drying, and tension heat treatment produces fibers which have the following properties: density of 1.59 g/cm3; tensile strength of 820 kpsi; tensile modulus of 52 Mpsi; compressive strength of 50 kpsi; they are electrically insulating; they do not absorb moisture; and they are insensitive to radiation, including ultraviolet. Since the chain modulus of PBO is estimated to be 730 GPa, the high stiffness also affords the opportunity to reinforce a flexible coil polymer at the molecular level, in analogy to a chopped fiber reinforced composite. The objectives of the molecular composite concept are to eliminate the thermal expansion coefficient mismatch between the fiber and the matrix, as occurs in conventional composites, to eliminate the interface between the fiber and the matrix, and, hopefully, to obtain synergistic effects from the exceptional stiffness of the rigid-rod molecule. These expectations have been confirmed in the case of blending rigid-rod PBZT, poly(paraphenylene benzobisthiazole), Figure 1b, with stiff-chain ABPBI, poly 2,5(6) benzimidazole, Fig. 1c A film with 30% PBZT/70% ABPBI had tensile strength 190 kpsi and tensile modulus of 13 Mpsi when solution spun from a 3% methane sulfonic acid solution into a film. The modulus, as predicted by rule of mixtures, for a film with this composition and with planar isotropic orientation, should be 16 Mpsi. The experimental value is 80% of the theoretical value indicating that the concept of a molecular composite is valid.


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