scholarly journals Orbital order drives magnetic order in 5d1 and 5d2 double perovskite Mott insulators

2021 ◽  
Vol 104 (2) ◽  
Author(s):  
Christopher Svoboda ◽  
Wenjuan Zhang ◽  
Mohit Randeria ◽  
Nandini Trivedi
2014 ◽  
Vol 70 (a1) ◽  
pp. C388-C388
Author(s):  
Mickael Morin ◽  
Denis Scheptyakov ◽  
Lukas Keller ◽  
Juan Rodríguez-Carvajal ◽  
Andrea Scaramucci ◽  
...  

Ferroelectric materials have been known for almost one century [1]. While their potential for applications was rapidly recognized, the possibility of combining ferroelectricity with magnetic order -preferably with ferromagnetism- has resulted in an enormous deal of interest during the last decade. Several new materials combining both types of order have been recently reported, although their promising multifunctionalities have been obscured by two facts: on one side, most of them are antiferromagnetic; on the other, their transition temperatures, typically below 40K, are too low for most practical applications. The oxygen-defficient double perovskite YBaFeCuO5 constitutes a remarkable exception. Spontaneous electric polarization has been recently reported to exist below an unusually high temperature of TC ≍ 200K [2] coinciding with the occurrence of a commensurate - to - incommensurate reorientation of the Fe3+ and Cu2+ magnetic moments [3,4]. From a more fundamental point of view the observation of incommensurable magnetic order in a tetragonal material at such high temperatures is rather surprising. In particular, the nature of the relevant competing magnetic interactions and its possible link to low dimensionality or geometrical frustration is not understood at present. Although the existence of the spin reorientation in this material is known since 1995 [3] the low temperature magnetic structure has not yet been solved. Using neutron powder diffraction we have recently been able to propose a spiral model which satisfactorily describes the measured magnetic intensities below TC. Further, investigation of the crystal structure showed the existence of small anomalies in the lattice parameters and some interatomic distances at TC. The relevance of these findings for the magnetoelectric coupling, the direction of the polarization, the modification of the different exchange paths in the structure and the stabilization of the incommensurate magnetic order below TC is discussed.


2008 ◽  
Vol 78 (22) ◽  
Author(s):  
J.-S. Zhou ◽  
Y. Uwatoko ◽  
K. Matsubayashi ◽  
J. B. Goodenough

2017 ◽  
Vol 95 (14) ◽  
Author(s):  
K. Rolfs ◽  
S. Tóth ◽  
E. Pomjakushina ◽  
D. T. Adroja ◽  
D. Khalyavin ◽  
...  

2021 ◽  
Vol 6 (1) ◽  
Author(s):  
B. Freelon ◽  
R. Sarkar ◽  
S. Kamusella ◽  
F. Brückner ◽  
V. Grinenko ◽  
...  

AbstractNematic fluctuations occur in a wide range physical systems from biological molecules to cuprates and iron pnictide high-Tc superconductors. It is unclear whether nematicity in pnictides arises from electronic spin or orbital degrees of freedom. We studied the iron-based Mott insulators La2O2Fe2OM2M = (S, Se), which are structurally similar to pnictides. Nuclear magnetic resonance revealed a critical slowing down of nematic fluctuations and complementary Mössbauerr spectroscopy data showed a change of electrical field gradient. The neutron pair distribution function technique detected local C2 fluctuations while neutron diffraction indicates that global C4 symmetry is preserved. A geometrically frustrated Heisenberg model with biquadratic and single-ion anisotropic terms provides the interpretation of the low temperature magnetic fluctuations. The nematicity is not due to spontaneous orbital order, instead it is linked to geometrically frustrated magnetism based on orbital selectivity. This study highlights the interplay between orbital order and spin fluctuations in nematicity.


2021 ◽  
Vol 103 (10) ◽  
Author(s):  
Gøran J. Nilsen ◽  
Corey M. Thompson ◽  
Casey Marjerisson ◽  
Danis I. Badrtdinov ◽  
Alexander A. Tsirlin ◽  
...  

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