Literature DB >> 27015360

Ga(3+)/Ln(3+) Metallacrowns: A Promising Family of Highly Luminescent Lanthanide Complexes That Covers Visible and Near-Infrared Domains.

Chun Y Chow1, Svetlana V Eliseeva2, Evan R Trivedi1, Tu N Nguyen1, Jeff W Kampf1, Stéphane Petoud2, Vincent L Pecoraro1.   

Abstract

Luminescent lanthanide(III)-based molecular scaffolds hold great promises for materials science and for biological applications. Their fascinating photophysical properties enable spectral discrimination of emission bands that range from the visible to the near-infrared (NIR) regions. In addition, their strong resistance to photobleaching makes them suitable for long duration or repeated biological experiments using a broad range of sources of excitation including intense and focalized systems such as lasers (e.g., confocal microscopy). A main challenge in the creation of luminescent lanthanide(III) complexes lies in the design of a ligand framework that combines two main features: (i) it must include a chromophoric moiety that possesses a large molar absorptivity and is able to sensitize several different lanthanide(III) ions emitting in the visible and/or in the near-infrared, and (ii) it must protect the Ln(3+) cation by minimizing nonradiative deactivation pathways due to the presence of -OH, -NH and -CH vibrations. Herein, a new family of luminescent Ga(3+)/Ln(3+) metallacrown (MC) complexes is reported. The MCs with the general composition [LnGa4(shi)4(C6H5CO2)4(C5H5N) (CH3OH)] (Ln-1, Ln = Sm(3+)-Yb(3+)) were synthesized in a one pot reaction using salicylhydroxamic acid (H3shi) with Ga(3+) and Ln(3+) nitrates as reagents. The molecular structure of [DyGa4(shi)4(C6H5CO2)4(C5H5N) (CH3OH)] was obtained by X-ray analysis of single crystals and shows that the complex is formed as a [12-MCGa(III)shi-4] core with four benzoate molecules bridging the central Dy(3+) ion to the Ga(3+) ring metals. The powder X-ray diffraction analysis demonstrates that all other isolated complexes are isostructural. The extended analysis of the luminescence properties of these complexes, excited by the electronic states of the chromophoric ligands, showed the presence of characteristic, sharp f-f transitions that can be generated not only in the NIR (Sm, Dy, Ho, Er, Yb) but also in the visible (Sm, Eu, Tb, Dy, Tm). All Ln-1 complexes possess very high quantum yield values with respect to other literature compounds, indicating a good sensitization efficiency of the [12-MCGa(III)shi-4] scaffold. Especially, as of today, the Yb-1 complex exhibits the highest NIR quantum yield reported for a lanthanide(III) complex containing C-H bonds with a value of 5.88(2)% in the solid state. This work is a significant step forward toward versatile, easily prepared luminescent lanthanide(III) complexes suitable for a variety of applications including highly in demand biological imaging, especially in the NIR domain.

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Year:  2016        PMID: 27015360     DOI: 10.1021/jacs.6b00984

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  12 in total

1.  Aspects of lanthanide complexes for selectivity, intensity and sharpness in luminescence bands from twenty-four praseodymium, europium and gadolinium complexes with differently distorted-hexadentate ligands.

Authors:  Miki Hasegawa; Shoya Sakurai; Masafumi Andrew Yamaguchi; Daichi Iwasawa; Naho Yajima; Shuhei Ogata; Yudai Inazuka; Ayumi Ishii; Kengo Suzuki
Journal:  Photochem Photobiol Sci       Date:  2020-07-01       Impact factor: 3.982

Review 2.  Luminescent Metal Complexes for Bioassays in the Near-Infrared (NIR) Region.

Authors:  Guo-Qing Jin; Li-Jun Guo; Jing Zhang; Song Gao; Jun-Long Zhang
Journal:  Top Curr Chem (Cham)       Date:  2022-06-18

3.  Identification of seven-coordinate LnIII ions in a LnIII[15-MCFe III N(shi)-5](OAc)2Cl species crystallized from methanol and pyridine.

Authors:  Elizabeth S Biros; Cassandra L Ward; Matthew J Allen; Jacob C Lutter
Journal:  J Chem Crystallogr       Date:  2021-08-21       Impact factor: 0.582

4.  Near-Infrared Lanthanide-Based Emission from Fused Bis[Ln(III)/Zn(II) 14-metallacrown-5] Coordination Compounds.

Authors:  John P Karns; Svetlana V Eliseeva; Cassandra L Ward; Matthew J Allen; Stéphane Petoud; Jacob C Lutter
Journal:  Inorg Chem       Date:  2022-04-04       Impact factor: 5.436

5.  Crystal structures of three anionic lanthanide-aluminium [3.3.1] metallacryptate complexes.

Authors:  Rachel E Rheam; Matthias Zeller; Curtis M Zaleski
Journal:  Acta Crystallogr E Crystallogr Commun       Date:  2020-08-14

6.  Highly near-IR emissive ytterbium(iii) complexes with unprecedented quantum yields.

Authors:  Ji-Yun Hu; Yingying Ning; Yin-Shan Meng; Jing Zhang; Zhuo-Yan Wu; Song Gao; Jun-Long Zhang
Journal:  Chem Sci       Date:  2017-01-13       Impact factor: 9.825

7.  Dicyanamide Bridged Cu(II)36-Metallacrown-6 Complex with 1,4,7-Triisopropyl-1,4,7-Triazacyclononane and Binding Properties with DNA.

Authors:  Yong-Sheng Yang; Li-Jun Liu; Hai-Yan Ju; Xiu-Ying Liu; Yu-Guang Li; Shi-Ping Yan
Journal:  Molecules       Date:  2018-05-25       Impact factor: 4.411

8.  Tuning the photophysical properties of lanthanide(iii)/zinc(ii) 'encapsulated sandwich' metallacrowns emitting in the near-infrared range.

Authors:  Svetlana V Eliseeva; Tu N Nguyen; Jeff W Kampf; Evan R Trivedi; Vincent L Pecoraro; Stéphane Petoud
Journal:  Chem Sci       Date:  2022-02-03       Impact factor: 9.825

9.  Three resorcin[4]arene-based lanthanide-coordination polymers with multifunctional photoluminescence sensing properties.

Authors:  Hang Zhang; Jia-Chen Wang; Wei Jiang; Si-Si Zhao
Journal:  RSC Adv       Date:  2019-01-28       Impact factor: 4.036

10.  Luminescent Polynuclear Zn- and Cd-Ln Square-Like Nanoclusters With a Flexible Long-Chain Schiff Base Ligand.

Authors:  Ting Zhu; Xiaoping Yang; Xiaohui Zheng; Shiqing Wang; Le Bo; Chengri Wang; Hongfen Chen; Dongmei Jiang; Desmond Schipper
Journal:  Front Chem       Date:  2018-07-31       Impact factor: 5.221

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