Noncollinear magnetic ordering in small Chromium Clusters
C. Kohl, G. F. Bertsch
Abstract
We investigate noncollinear effects in antiferromagnetically coupled clusters using the general, rotationally invariant form of local spin-density theory. The coupling to the electronic degrees of freedom is treated with relativistic non-local pseudopotentials and the ionic structure is optimized by Monte-Carlo techniques. We find that small chromium clusters (N 13) strongly favor noncollinear configurations of their local magnetic moments due to frustration. This effect is associated with a significantly lower total magnetization of the noncollinear ground states, ameliorating the disagreement between Stern-Gerlach measurements and previous collinear calculations for Cr12 and Cr13. Our results further suggest that the trend to noncollinear configurations might be a feature common to most antiferromagnetic clusters.
Create a lesson
Related papers
What is superatom?
Zhigang Wang
Size characterization of neutral rare-gas clusters based on time-resolved polarization anisotropy measurements
Arne Morlok, Grzegorz Kowzan, Yilin Li et al.
Lithium Borohydride (LiBH4): An Innovative Material for Neutron Radiation Shielding
Mohammadreza Lotfalian, Mitra Athari Allaf, Masoud Mansouri
Signatures of a bilayer structure in the photoelectron spectrum of B80-
Yi-Sha Chen, Jing-Jing Guo, Peng-Bo Liu et al.
Nonadiabatic Dynamics and Rotational Coupling in HeH+ Dissociative Recombination and Resonant Ion-Pair Formation
Sifiso Musa Nkambule, Malibongwe Tsabedze, Oscar N. Mabuza et al.
Rainbow RABBITT as a Probe of Coherent Rabi Dynamics
Vladislav V. Serov, Anatoli S. Kheifets