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Related papers: Phase Separation in Models for Manganites: Theoret…

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A simple model is proposed to calculate resistivity, magnetoresistance, and noise spectrum in non-metallic phase-separated manganites containing small metallic droplets (magnetic polarons). The system is taken to be far from the percolation…

Strongly Correlated Electrons · Physics 2009-10-31 A. L. Rakhmanov , K. I. Kugel , Ya. M. Blanter , M. Yu. Kagan

The atomic pair distribution function (PDF) technique is employed to probe the atomic local structural responses in naturally double layered manganites \lsmo in the doping range $0.54 \leq x \leq 0.80$. Our low temperature neutron powder…

Strongly Correlated Electrons · Physics 2009-11-10 Xiangyun Qiu , Simon J. L. Billinge , Carmen R. Kmety , John F. Mitchell

We show explicitly that the one- and two-dimensional Hubbard model does not show phase separation at any filling at T=0. Apart from a single plausible assumption, only known exact results and symmetry properties for the one-band Hubbard…

Strongly Correlated Electrons · Physics 2008-10-27 M. S. Laad

We have investigated the change in entropy with direct measurements of heat flow as a function of magnetic field at fixed temperatures across the entire phase diagram of the phase-separated (PS) compound…

Materials Science · Physics 2020-07-16 A. L. Lima-Sharma , P. A. Sharma , C. Boekema

Transition-metal perovskite oxides exhibit a wide range of extraordinary but imperfectly understood phenomena. Charge, spin, orbital, and lattice degrees of freedom all undergo order-disorder transitions in regimes not far from where the…

Strongly Correlated Electrons · Physics 2009-11-07 Ch. Renner , G. Aeppli , B-G. Kim , Yeong-Ah Soh , S. -W. Cheong

Differences in activities in colloidal particles are sufficient to drive phase separation between active and passive (or less active) particles, even if they have only excluded volume interactions. In this paper, we study the phase…

Soft Condensed Matter · Physics 2020-05-27 Efe Ilker , Jean-François Joanny

Spin-state transitions, observed in many transition metal compounds containing Co$^{3+}$ and Fe$^{2+}$, may occur with the change of temperature, pressure, but also with doping, in which case the competition of single-site effects and…

Strongly Correlated Electrons · Physics 2009-07-24 A. O. Sboychakov , K. I. Kugel , A. L. Rakhmanov , D. I. Khomskii

Analyzing the orbital structure and lattice distortions in the CE phase of half-doped manganites, we demonstrate that the usual approach directly relating the orbital occupation of Jahn-Teller ions to the displacements of neighboring…

Strongly Correlated Electrons · Physics 2011-06-06 A. O. Sboychakov , K. I. Kugel , A. L. Rakhmanov , D. I. Khomskii

The occurrence at low temperatures of an ultrasharp field-induced transition in phase separated manganites is analyzed. Experimental results show that magnetization and specific heat step-like transitions below 5 K are correlated with an…

We report x-ray scattering studies of broad peaks located at a (0.5 0 0)/(0 0.5 0)-type wavevector in the paramagnetic insulating phases of La_{0.7}Ca_{0.3}MnO_{3} and Pr_{0.7}Ca_{0.3}MnO_{3}. We interpret the scattering in terms of…

The effect of temperature on the magnetic phase separation and the parameters of spin-spiral waves (SSW) is studied using a two-dimensional (2D) single-band $t-t'$ Hubbard model and the Hubbard-Stratonovich transformation. Both commensurate…

Strongly Correlated Electrons · Physics 2012-11-16 A. K. Arzhnikov , A. G. Groshev

In the colossal magnetoresistance manganites polarons have been proposed as the charge carrier state which localizes across the metal-insulator transition. The character of the polarons is still under debate. We present an assessment of…

Strongly Correlated Electrons · Physics 2015-06-24 Ch. Hartinger , F. Mayr , A. Loidl , T. Kopp

It is a comment on a paper titled "Reversibility of magnetic field driven transition from electronic phase separation state to single-phase state in manganites: A microscopic view" by Liu et al. Phys. Rev. B 96 (2017) 195154.

Strongly Correlated Electrons · Physics 2017-12-19 R. Rawat , V G. Sathe , P. Chaddah

We study the melting of charge order in the half doped manganites using a model that incorporates double exchange, antiferromagnetic superexchange, and Jahn-Teller coupling between electrons and phonons. We primarily use a real space Monte…

Strongly Correlated Electrons · Physics 2014-10-22 Anamitra Mukherjee , Pinaki Majumdar

We study the mechanism of orbital-order melting observed at temperature T_OO in the series of rare-earth manganites. We find that many-body super-exchange yields a transition-temperature T_KK that decreases with decreasing rare-earth…

Strongly Correlated Electrons · Physics 2012-01-27 Andreas Flesch , Guoren Zhang , Erik Koch , Eva Pavarini

A possible mechanism of electronic phase separation in the systems with orbital ordering is analyzed. We suggest a simple model taking into account an interplay between the delocalization of charge carriers introduced by doping and the…

Strongly Correlated Electrons · Physics 2008-10-21 K. I. Kugel , A. L. Rakhmanov , A. O. Sboychakov , D. I. Khomskii

Incommensurate charge order in hole-doped oxides is intertwined with exotic phenomena such as colossal magnetoresistance, high-temperature superconductivity, and electronic nematicity. Here, we map at atomic resolution the nature of…

The orbital shapes and charge disproportionations at nominal Mn$^{3+}$ and Mn$^{4+}$ sites for the charge- and orbital-ordered phases have been studied on half-doped manganites Pr(Sr$_{0.1}$Ca$_{0.9}$)$_2$Mn$_2$O$_7$ and…

Strongly Correlated Electrons · Physics 2009-10-17 D. Okuyama , Y. Tokunaga , R. Kumai , Y. Taguchi , T. Arima , Y. Tokura

We present a lattice model to study the equilibrium phase diagram of ordered alloys with one magnetic component that exhibits a low temperature phase separation between paramagnetic and ferromagnetic phases. The model is constructed from…

Materials Science · Physics 2009-11-07 Jordi Marcos , Eduard Vives , Teresa Castan

This is a Comment on Kundhikanjana et al PRL 115 (2015) 265701 and the earlier Kundhikanjana et al arXiv:1306.3065v1 (2013)

Materials Science · Physics 2016-02-03 Praveen Chaddah
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