paper

Spin-driven Phase Transitions in ZnCrSe and ZnCrS Probed by High Resolution Synchrotron X-ray and Neutron Powder Diffraction

arXiv:0811.3084 · doi:10.1103/PhysRevB.79.064423

Abstract

The crystal and magnetic structures of the spinel compounds ZnCrS and ZnCrSe were investigated by high resolution powder synchrotron and neutron diffraction. ZnCrSe exhibits a first order phase transition at K into an incommensurate helical magnetic structure. Magnetic fluctuations above are coupled to the crystal lattice as manifested by negative thermal expansion. Both, the complex magnetic structure and the anomalous structural behavior can be related to magnetic frustration. Application of an external magnetic field shifts the ordering temperature and the regime of negative thermal expansion towards lower temperatures. Thereby, the spin ordering changes into a conical structure. ZnCrS shows two magnetic transitions at K and K that are accompanied by structural phase transitions. The crystal structure transforms from the cubic spinel-type (space group \={3}) at high temperatures in the paramagnetic state, via a tetragonally distorted intermediate phase (space group / ) for into a low temperature orthorhombic phase (space group ) for . The cooperative displacement of sulfur ions by exchange striction is the origin of these structural phase transitions. The low temperature structure of ZnCrS is identical to the orthorhombic structure of magnetite below the Verwey transition. When applying a magnetic field of 5 T the system shows an induced negative thermal expansion in the intermediate magnetic phase as observed in ZnCrSe.

11 pages, 13 figures, to be published in PRB

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