Literature DB >> 23489255

Trimetallic nitride template endohedral metallofullerenes: discovery, structural characterization, reactivity, and applications.

Jianyuan Zhang1, Steven Stevenson, Harry C Dorn.   

Abstract

Shortly after the discovery of the carbon fullerene allotrope, C₆₀, researchers recognized that the hollow spheroidal shape could accommodate metal atoms, or clusters, which quickly led to the discovery of endohedral metallofullerenes (EMFs). In the past 2 decades, the unique features of EMFs have attracted broad interest in many fields, including inorganic chemistry, organic chemistry, materials chemistry, and biomedical chemistry. Some EMFs produce new metallic clusters that do not exist outside of a fullerene cage, and some other EMFs can boost the efficiency of magnetic resonance (MR) imaging 10-50-fold, in comparison with commercial contrast agents. In 1999, the Dorn laboratory discovered the trimetallic nitride template (TNT) EMFs, which consist of a trimetallic nitride cluster and a host fullerene cage. The TNT-EMFs (A₃N@C2n, n = 34-55, A = Sc, Y, or lanthanides) are typically formed in relatively high yields (sometimes only exceeded by empty-cage C₆₀ and C₇₀, but yields may decrease with increasing TNT cluster size), and exhibit high chemical and thermal stability. In this Account, we give an overview of TNT-EMF research, starting with the discovery of these structures and then describing their synthesis and applications. First, we describe our serendipitous discovery of the first member of this class, Sc₃N@Ih-C₈₀. Second, we discuss the methodology for the synthesis of several TNT-EMFs. These results emphasize the importance of chemically adjusting plasma temperature, energy, and reactivity (CAPTEAR) to optimize the type and yield of TNT-EMFs produced. Third, we review the approaches that are used to separate and purify pristine TNT-EMF molecules from their corresponding product mixtures. Although we used high-performance liquid chromatography (HPLC) to separate TNT-EMFs in early studies, we have more recently achieved facile separation based on the reduced chemical reactivity of the TNT-EMFs. These improved production yields and separation protocols have allowed industrial researchers to scale up the production of TNT-EMFs for commercial use. Fourth, we summarize the structural features of individual members of the TNT-EMF class, including cage structures, cluster arrangement, and dynamics. Fifth, we illustrate typical functionalization reactions of the TNT-EMFs, particularly cycloadditions and radical reactions, and describe the characterization of their derivatives. Finally, we illustrate the unique magnetic and electronic properties of specific TNT-EMFs for biomedicine and molecular device applications.

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Year:  2013        PMID: 23489255     DOI: 10.1021/ar300301v

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  13 in total

1.  Triangular Monometallic Cyanide Cluster Entrapped in Carbon Cage with Geometry-Dependent Molecular Magnetism.

Authors:  Fupin Liu; Cong-Li Gao; Qingming Deng; Xianjun Zhu; Aram Kostanyan; Rasmus Westerström; Song Wang; Yuan-Zhi Tan; Jun Tao; Su-Yuan Xie; Alexey A Popov; Thomas Greber; Shangfeng Yang
Journal:  J Am Chem Soc       Date:  2016-10-31       Impact factor: 15.419

2.  Methane as a Selectivity Booster in the Arc-Discharge Synthesis of Endohedral Fullerenes: Selective Synthesis of the Single-Molecule Magnet Dy2TiC@C80 and Its Congener Dy2TiC2@C80.

Authors:  Katrin Junghans; Christin Schlesier; Aram Kostanyan; Nataliya A Samoylova; Qingming Deng; Marco Rosenkranz; Sandra Schiemenz; Rasmus Westerström; Thomas Greber; Bernd Büchner; Alexey A Popov
Journal:  Angew Chem Int Ed Engl       Date:  2015-09-09       Impact factor: 15.336

3.  Small endohedral metallofullerenes: exploration of the structure and growth mechanism in the Ti@C2n (2n = 26-50) family.

Authors:  Marc Mulet-Gas; Laura Abella; Paul W Dunk; Antonio Rodríguez-Fortea; Harold W Kroto; Josep M Poblet
Journal:  Chem Sci       Date:  2014-09-12       Impact factor: 9.825

4.  Reliable charge assessment on encapsulated fragment for endohedral systems.

Authors:  A J Stasyuk; M Solà; A A Voityuk
Journal:  Sci Rep       Date:  2018-02-13       Impact factor: 4.379

5.  Transformation of doped graphite into cluster-encapsulated fullerene cages.

Authors:  Marc Mulet-Gas; Laura Abella; Maira R Cerón; Edison Castro; Alan G Marshall; Antonio Rodríguez-Fortea; Luis Echegoyen; Josep M Poblet; Paul W Dunk
Journal:  Nat Commun       Date:  2017-10-31       Impact factor: 14.919

6.  Photoreactions of Endohedral Metallofullerene with Siliranes: Electronic Properties of Carbosilylated Lu₃N@Ih-C80.

Authors:  Masahiro Kako; Kazuya Minami; Taiki Kuroiwa; Shinpei Fukazawa; Yuki Arikawa; Michio Yamada; Yutaka Maeda; Qiao-Zhi Li; Shigeru Nagase; Takeshi Akasaka
Journal:  Molecules       Date:  2017-05-20       Impact factor: 4.411

Review 7.  Functionalization of Endohedral Metallofullerenes with Reactive Silicon and Germanium Compounds.

Authors:  Masahiro Kako; Shigeru Nagase; Takeshi Akasaka
Journal:  Molecules       Date:  2017-07-14       Impact factor: 4.411

Review 8.  Non-Chromatographic Purification of Endohedral Metallofullerenes.

Authors:  Zhiyong Wang; Haruka Omachi; Hisanori Shinohara
Journal:  Molecules       Date:  2017-04-29       Impact factor: 4.411

9.  Single Molecule Magnetism with Strong Magnetic Anisotropy and Enhanced Dy∙∙∙Dy Coupling in Three Isomers of Dy-Oxide Clusterfullerene Dy2O@C82.

Authors:  Wei Yang; Georgios Velkos; Fupin Liu; Svetlana M Sudarkova; Yaofeng Wang; Jiaxin Zhuang; Hanning Zhang; Xiang Li; Xingxing Zhang; Bernd Büchner; Stanislav M Avdoshenko; Alexey A Popov; Ning Chen
Journal:  Adv Sci (Weinh)       Date:  2019-08-15       Impact factor: 16.806

10.  Taming C60 fullerene: tuning intramolecular photoinduced electron transfer process with subphthalocyanines.

Authors:  Marc Rudolf; Olga Trukhina; Josefina Perles; Lai Feng; Takeshi Akasaka; Tomas Torres; Dirk M Guldi
Journal:  Chem Sci       Date:  2015-04-16       Impact factor: 9.825

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