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Antiferromagnetism in CsMnF₃

dc.contributor.advisorCollins, M.F.en_US
dc.contributor.authorKhatamian, Djamshiden_US
dc.contributor.departmentPhysicsen_US
dc.date.accessioned2014-06-18T16:43:17Z
dc.date.available2014-06-18T16:43:17Z
dc.date.created2010-12-24en_US
dc.date.issued1976-09en_US
dc.description.abstract<p>Two of the magnetic properties of antiferromagnet, CsMnF₃, were studied by thermal neutron scattering techniques.</p> <p>Spin wave-dispersion curves, along the two high symmetry directions (00ξ) and (ξ00), were determined and were satisfactorily fitted to a theoretical model with two nearest neighbour exchange constants, J₁₂ = 0.134±.003 THz and J₂₃ = 0.094±.0105 THz, and one second nearest neighbour exchange constant, J₃₅=-0.0138±.003 THz. The spin wave properties can be described in terms of an effective anisotropy field of -2700±900 Oe along the crystal c axis. This field constrains the spins to the basal plane of the crystal. The calculations show that magnetic dipole-dipole interactions, alone, provide enough anisotropy to account for the observed results.</p> <p>The sublattice magnetization, over the temperature range of 6.8 K to 72.2 K, was measured. This shows a critical phase transition with a critical exponent β given by β = 0.317±.009.</p>en_US
dc.description.degreeDoctor of Philosophy (PhD)en_US
dc.identifier.otheropendissertations/3763en_US
dc.identifier.other4780en_US
dc.identifier.other1710809en_US
dc.identifier.urihttp://hdl.handle.net/11375/8568
dc.subjectPhysicsen_US
dc.subjectPhysicsen_US
dc.titleAntiferromagnetism in CsMnF₃en_US
dc.typethesisen_US

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