Rockenbauer A, Csányi Gábor, Fülöp F, Garaj S, Korecz L, Lukács R, Simon F, Forró L, Pekker S, Jánossy A
Chemical Research Center, Institute of Chemistry, P.O. Box 17 H-1525 Budapest, Hungary.
Phys Rev Lett. 2005 Feb 18;94(6):066603. doi: 10.1103/PhysRevLett.94.066603.
Electron spin resonance and ab initio electronic structure calculations show an intricate relation between molecular rotation and chemical bonding in the dilute solid solution. The unpaired electron of C59N is delocalized over several C60 molecules above 700 K, while at lower temperatures it remains localized within short range. The data suggest that below 350 K rigid C59N-C60 heterodimers are formed in thermodynamic equilibrium with dissociated rotating molecules. The structural fluctuations between heterodimers and dissociated molecules are accompanied by simultaneous electron spin transfer between C60 and C59N molecules. The calculation confirms that in the C59N-C60 heterodimer the spin density resides mostly on the C60 moiety, while it is almost entirely on C59N in the dissociated case.
电子自旋共振和从头算电子结构计算表明,在稀固溶体中,分子旋转与化学键之间存在着复杂的关系。C59N的未成对电子在700 K以上会离域到几个C60分子上,而在较低温度下,它仍局限在短距离范围内。数据表明,在350 K以下,刚性的C59N-C60异二聚体与解离的旋转分子形成热力学平衡。异二聚体和解离分子之间结构的波动伴随着C60和C59N分子之间同时发生的电子自旋转移。计算结果证实,在C59N-C60异二聚体中,自旋密度主要位于C60部分,而在解离情况下,自旋密度几乎完全位于C59N上。