Lowering the Barrier to C–H Activation at IrIII through Pincer Ligand Design

Author(s):  
Sophie B. Rubashkin ◽  
Wan-Yi Chu ◽  
Karen I. Goldberg
Keyword(s):  
2018 ◽  
Vol 47 (6) ◽  
pp. 1959-1968 ◽  
Author(s):  
Eduardo Peris ◽  
Robert H. Crabtree

This tutorial review analyses the reasons of success of pincer ligands.


2018 ◽  
Author(s):  
Tasneem Siddiquee ◽  
Abdul Goni

Chemical treatment of CoX<sub>2</sub><b><sup>. </sup></b>6H<sub>2</sub>O (X = Cl, Br, I) with the potentially tridentate PNP pincer ligand 2,6-bis(di-<i>tert</i>-butylphosphinomethyl)pyridine in 1:1 molar ratio results in cobalt(II) halide-PNP pincer complexes. The effect of the hydrated metal source on molecular structure and geometry of the complexes was studied by single crystal X-ray diffraction analysis. The complexes are neutral and the cobalt center adopts a penta-coordinate system with potential atropisomerization. Within the unit cell there are two distinct molecules per asymmetric unit. One of the two phosphorus atoms in the PNP ligand was observed to be partially oxidized to phosphinoxide. Disorder in the structure reflects a mixture of square pyramidal and distorted tetrahedral geometry.


Nanomaterials ◽  
2021 ◽  
Vol 11 (4) ◽  
pp. 1001
Author(s):  
Rui Huang ◽  
David C. Luther ◽  
Xianzhi Zhang ◽  
Aarohi Gupta ◽  
Samantha A. Tufts ◽  
...  

Nanoparticles (NPs) provide multipurpose platforms for a wide range of biological applications. These applications are enabled through molecular design of surface coverages, modulating NP interactions with biosystems. In this review, we highlight approaches to functionalize nanoparticles with ”small” organic ligands (Mw < 1000), providing insight into how organic synthesis can be used to engineer NPs for nanobiology and nanomedicine.


2021 ◽  
Vol 40 (6) ◽  
pp. 635-642
Author(s):  
Juan C. Babón ◽  
Miguel A. Esteruelas ◽  
Israel Fernández ◽  
Ana M. López ◽  
Enrique Oñate
Keyword(s):  

ACS Catalysis ◽  
2021 ◽  
pp. 4550-4560
Author(s):  
Manfred Manßen ◽  
Danfeng Deng ◽  
Cameron H. M. Zheng ◽  
Rebecca C. DiPucchio ◽  
Dafa Chen ◽  
...  

2021 ◽  
Vol 13 (11) ◽  
pp. 13705-13713
Author(s):  
Shoma Kitamura ◽  
Motoyuki Iijima ◽  
Junichi Tatami ◽  
Tsubasa Fuke ◽  
Takashi Hinotsu ◽  
...  

Crystals ◽  
2021 ◽  
Vol 11 (2) ◽  
pp. 119
Author(s):  
Jamal Lasri ◽  
Matti Haukka ◽  
Hessa H. Al-Rasheed ◽  
Nael Abutaha ◽  
Ayman El-Faham ◽  
...  

The square planar complex [Pd(PT)Cl(H2O)]*H2O (HPT: 6-(3,5-dimethyl-1H-pyrazol-1-yl)-1,3,5-triazine-2,4(1H,3H)-dione) was obtained by the reaction of 2-methoxy-4,6-bis(3,5-dimethyl-1H-pyrazol-1-yl)-1,3,5-triazine (MBPT) pincer ligand with PdCl2 in a molar ratio (1:1) under thermal conditions and using acetone as a solvent. The reaction proceeded via C-N cleavage of one C-N moiety that connects the pyrazole and s-triazine combined with the hydrolysis of the O-CH3 group. The reaction of the chloride salt of its higher congener (PtCl2) gave [Pt(3,5-dimethyl-1H-pyrazole)2Cl2]. The crystal structure of [Pd(PT)Cl(H2O)]*H2O complex is stabilized by inter- and intra-molecular hydrogen bonding interactions. Hirshfeld analysis revealed that the H...H (34.6%), O...H (23.6%), and Cl...H (7.8%) interactions are the major contacts in the crystal. The charges at Pd, H2O, Cl and PT are changed to 0.4995, 0.2216, −0.4294 and −0.2917 instead of +2, 0, −1 and −1, respectively, using the MPW1PW91 method. [Pd(PT)Cl(H2O)]*H2O complex has almost equal activities against MDA-MB-231 and MCF-7 cell lines with IC50 of 38.3 µg/mL.


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