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Cerium-Doped Endohedral Fullerene: A Density-Functional Theory Study
Author(s) -
A.Z. AlZahrani
Publication year - 2012
Publication title -
isrn condensed matter physics
Language(s) - English
Resource type - Journals
eISSN - 2090-7400
pISSN - 2090-7397
DOI - 10.5402/2012/208234
Subject(s) - density functional theory , cerium , fullerene , atom (system on chip) , ring (chemistry) , dopant , endohedral fullerene , doping , atomic physics , electronic structure , binding energy , total energy , materials science , crystallography , chemistry , computational chemistry , molecular physics , physics , inorganic chemistry , psychology , optoelectronics , organic chemistry , computer science , displacement (psychology) , psychotherapist , embedded system
First-principles total energy calculations of the structural and electronic properties of Ce-doped fullerene have been performed within the framework of the density functional theory at the generalized gradient approximation level. Among various locations, Ce atom was found to engage with the six-fold carbon ring. The total energy is found to significantly change as the Ce atom being shifted from the center of the cage toward the edge close to the six-membered ring where the total energy reaches its local minimum. Moreover, repulsive interaction between Ce atom and the cage components turns as the adatom directly interacts with the six C atoms of the ring. The lowest-energy CeC60 geometry is found to have a binding energy of approximately 5.34 eV, suggesting strong interaction of the dopant with the cage members. Furthermore, fundamental key structural parameters and the total density of states of the optimized structure have been determined and compared with the available data.

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