rare earth complexes
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Author(s):  
Oleh Stetsiuk ◽  
Léo La Droitte ◽  
Violaine Goudy ◽  
Boris Le Guennic ◽  
Olivier Cador ◽  
...  

2022 ◽  
Author(s):  
Olga A Mironova ◽  
Daniil I. Lashchenko ◽  
Alexey A. Ryadun ◽  
Taisiya Sergeevna Sukhikh ◽  
Denis Bashirov ◽  
...  

A series of rare earth (RE) chloride complexes bearing silanediamido ligands (LAryl)2– = Me2Si(NAryl)22– with bulky substituents, Aryl = mesityl (Mes), and 2,6-diisopropylphenyl (Dipp) was synthesized by salt metathesis reactions....


2021 ◽  
Vol 25 ◽  
Author(s):  
Alexis Prieto ◽  
Florian Jaroschik

: In recent years, photoredox catalysis has appeared as a new paradigm for forging a wide range of chemical bonds under mild conditions using abundant reagents. This approach allows many organic transformations through the generation of various radical species, enabling the valorization of non-traditional partners. A continuing interest has been devoted to the discovery of novel radical-generating procedures. Over the last ten years, strategies using rare-earth complexes as either redox-active centers or as redox-neutral Lewis acids have emerged. This review provides an overview of the recent accomplishments made in this field. It especially aims to demonstrate the utility of rare-earth complexes for ensuring photocatalytic transformations and to inspire future developments.


Author(s):  
Katarzyna Ślepokura ◽  
Trevor A. Cabreros ◽  
Gilles Muller ◽  
Jerzy Lisowski

Author(s):  
Zhiyuan Zhang ◽  
Yuanghang Li ◽  
Zhengquan Fu ◽  
Di Wang ◽  
Chengyu Wang ◽  
...  

Inorganics ◽  
2021 ◽  
Vol 9 (10) ◽  
pp. 74
Author(s):  
Franz A. Mautner ◽  
Florian Bierbaumer ◽  
Roland C. Fischer ◽  
Ana Torvisco ◽  
Ramon Vicente ◽  
...  

Ten mononuclear rare earth complexes of formula [La(btfa)3(H2O)2] (1), [La(btfa)3(4,4′-Mt2bipy)] (2), [La(btfa)3(4,4′-Me2bipy)2] (3), [La(btfa)3(5,5′-Me2bipy)2] (4), [La(btfa)3(terpy)] (5), [La(btfa)3(phen)(EtOH)] (6), [La(btfa)3(4,4′-Me2bipy)(EtOH)] (7), [La(btfa)3(2-benzpy)(MeOH)] (8), [Tb(btfa)3(4,4′-Me2bipy)] (9) and (Hpy)[Eu(btfa)4] (10), where btfa = 4,4,4-trifuoro-1-phenylbutane-1,3-dionato anion, 4,4′-Mt2bipy = 4,4′-dimethoxy-2,2′-bipyridine, 4,4′-Me2bipy = 4,4′-dimethyl-2,2′-bipyridine, 5,5′-Me2bipy = 5,5′-dimethyl-2,2′-bipyridine, terpy = 2,2′:6′,2′-terpyridine, phen = 1,10-phenathroline, 2-benzpy = 2-(2-pyridyl)benzimidazole, Hpy = pyridiniumH+ cation) have been synthesized and structurally characterized. The complexes display coordination numbers (CN) eight for 1, 2, 9, 10, nine for 5, 6, 7, 8 and ten for 3 and 4. The solid-state luminescence spectra of Tb-9 and Eu-10 complexes showed the same characteristic bands predicted from the Tb(III) and Eu(III) ions. The Overall Quantum Yield measured (ϕTOT) at the excitation wavelength of 371 nm for both compounds yielded 1.04% for 9 and up to 34.56% for 10.


2021 ◽  
pp. 120516
Author(s):  
Renan Barrach Guerra ◽  
Diogo Alves Gálico ◽  
Thais Fernanda de Campos Fraga-Silva ◽  
Julia Aguiar ◽  
James Venturini ◽  
...  

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