Focus issue on studies of structural disorder using reverse Monte Carlo methods
Physica Scripta IOP Publishing 92:7 (2017) 070201
Local structure study of the orbital order/disorder transition in LaMnO3
Physical Review B 95:17 (2017)
Abstract:
© 2017 American Physical Society. We use a combination of neutron and x-ray total scattering measurements together with pair distribution function (PDF) analysis to characterize the variation in local structure across the orbital order/disorder transition in LaMnO3. Our experimental data are inconsistent with a conventional order/disorder description of the transition, and reflect instead the existence of a discontinuous change in local structure between ordered and disordered states. Within the orbital ordered regime, the neutron and x-ray PDFs are best described by a local structure model with the same local orbital arrangements as those observed in the average (long-range) crystal structure. We show that a variety of meaningfully different local orbital arrangement models can give fits of comparable quality to the experimental PDFs collected within the disordered regime; nevertheless, our data show a subtle but consistent preference for the anisotropic Potts model proposed previously [M. R. Ahmed and G. A. Gehring, Phys. Rev. B 79, 174106 (2009)PRBMDO1098-012110.1103/PhysRevB.79.174106]. The key implications of this model are electronic and magnetic isotropy together with the loss of local inversion symmetry at the Mn site. We conclude with a critical assessment of the interpretation of PDF measurements when characterizing local symmetry breaking in functional materials.Gel-based morphological design of zirconium metal–organic frameworks
Chemical Science Royal Society of Chemistry (RSC) 8:5 (2017) 3939-3948
Room Temperature Neutron Crystallography of Drug Resistant HIV‑1 Protease Uncovers Limitations of X‑ray Structural Analysis at 100 K
Journal of Medicinal Chemistry American Chemical Society (ACS) 60:5 (2017) 2018-2025
Exploration of antiferromagnetic CoO and NiO using reverse Monte Carlo total neutron scattering refinements
Physica Scripta 91:11 (2016) 114004-114004