Ge Zhongxin, Duchamp James C, Cai Ting, Gibson Harry W, Dorn Harry C
Department of Chemistry, Virginia Polytechnic Institute and State University, Blacksburg, Virginia 24060, USA.
J Am Chem Soc. 2005 Nov 23;127(46):16292-8. doi: 10.1021/ja055089t.
A major hurdle hampering the development of fullerenes, endohedral metallofullerenes, and nanotubes has been the difficulty of obtaining high purity samples. Soots prepared in the usual manner via a Krätschmer-Huffman electric-arc generator consist of mixtures of insoluble carbonaceous materials and soluble fullerenes: C60, C70, C76, C78, C84, etc. When metals are introduced as endohedral species the complexity of the resultant soot is even greater because of the presence of multiple isomers of both the empty fullerenes and the endohedral metallofullerenes. Here, for the first time, we report that lanthanide trimetallic nitride endohedral metallofullerenes, A3N@C80 (A = lanthanide atom, e.g., Er, Gd, Ho, Lu, Sc, Tb, Tm, Y), can be obtained in pure form directly from as-prepared soots in a single facile step by taking advantage of their extraordinary kinetic chemical stability with respect to the other fullerenes in Diels-Alder reactions with a cyclopentadiene-functionalized resin. We show that careful control of conditions (stoichiometry, time, temperature) allows separation of fullerenes with different cage sizes, as well as isomeric species. Furthermore, the Diels-Alder reaction is thermally reversible, and we demonstrated that the bound empty-cage fullerenes and classical endohedral metallofullerenes can be recovered by displacement with maleic anhydride.
阻碍富勒烯、内嵌金属富勒烯和纳米管发展的一个主要障碍是难以获得高纯度样品。通过克勒施默-霍夫曼电弧发生器以常规方式制备的烟灰由不溶性含碳材料和可溶性富勒烯(C60、C70、C76、C78、C84等)的混合物组成。当金属作为内嵌物种引入时,由于空富勒烯和内嵌金属富勒烯都存在多种异构体,所得烟灰的复杂性甚至更高。在此,我们首次报告,镧系三金属氮化物内嵌金属富勒烯A3N@C80(A = 镧系原子,例如Er、Gd、Ho、Lu、Sc、Tb、Tm、Y)可以通过利用它们在与环戊二烯官能化树脂的狄尔斯-阿尔德反应中相对于其他富勒烯的非凡动力学化学稳定性,在一个简单的步骤中直接从制备好的烟灰中以纯形式获得。我们表明,仔细控制条件(化学计量比、时间、温度)可以分离不同笼尺寸的富勒烯以及异构体。此外,狄尔斯-阿尔德反应是热可逆的,并且我们证明了结合的空笼富勒烯和经典内嵌金属富勒烯可以通过用马来酸酐置换来回收。