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Chemical Communications (Cambridge, England)|October 7, 2015
Reactivity differences of Sc3N@C(2n) (2n = 68 and 80). Synthesis of the first methanofullerene derivatives of Sc3N@D(5h)-C80Maira R Cerón, Marta Izquierdo, Núria Alegret, et al.
Journal of the American Chemical Society|July 14, 2012
Azide addition to an endohedral metallofullerene: formation of azafulleroids of Sc3N@I(h)-C80Tong-Xin Liu, Tao Wei, San-E Zhu, et al.
Journal of the American Chemical Society|August 26, 2011
Very large, soluble endohedral fullerenes in the series La2C90 to La2C138: isolation and crystallographic characterization of La2@D5(450)-C100Christine M Beavers, Hongxiao Jin, Hua Yang, et al.
Inorganic Chemistry|December 11, 2012
Selective synthesis, isolation, and crystallographic characterization of LaSc2N@I(h)-C80Steven Stevenson, Coralie B Rose, Juliya S Maslenikova, et al.
Chemical Communications (Cambridge, England)|March 15, 2013
High yield synthesis of a new fullerene linker and its use in the formation of a linear coordination polymer by silver complexationPing Peng, Fang-Fang Li, Faye L Bowles, et al.
Journal of the American Chemical Society|June 29, 2006
Structure and enhanced reactivity rates of the D5h Sc3N@C80 and Lu3N@C80 metallofullerene isomers: the importance of the pyracylene motifTing Cai, Liaosa Xu, Mark R Anderson, et al.
The Journal of Physical Chemistry. A|November 20, 2018
Single-Crystal X-ray Diffraction Studies of Solvated Crystals of C<sub>60</sub> Reveal the Intermolecular Interactions between the Component MoleculesChristopher J Chancellor, Faye L Bowles, Jimmy U Franco, et al.
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