Magnetic-Field-Induced Suppression of Jahn-Teller Phonon Bands in (La0.6Pr0.4)0.7Ca0.3MnO3: the Mechanism of Colossal Magnetoresistance shown by Raman Spectroscopy

2019 | journal article; research paper. A publication with affiliation to the University of Göttingen.

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​Magnetic-Field-Induced Suppression of Jahn-Teller Phonon Bands in (La0.6Pr0.4)0.7Ca0.3MnO3: the Mechanism of Colossal Magnetoresistance shown by Raman Spectroscopy​
Merten, S.; Shapoval, O.; Damaschke, B.; Samwer, K. & Moshnyaga, V. ​ (2019) 
Scientific Reports9(1) art. 2387​.​ DOI: https://doi.org/10.1038/s41598-019-39597-1 

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Authors
Merten, S.; Shapoval, O.; Damaschke, B.; Samwer, K.; Moshnyaga, Vasily 
Abstract
A long-standing issue in the physics of the colossal magnetoresistance is the role of electron-phonon coupling, which manifests itself as Jahn-Teller polarons. The origin and architecture of polarons makes it possible to study their behavior by Raman spectroscopy, which allows to analyze the polaronic behavior in an applied magnetic field. We performed magnetic-field-dependent Raman spectroscopy on thin films of (La0.6Pr0.4)0.7Ca0.3MnO3 in a range of H = 0-50 kOe and compared the obtained Raman spectra with the magnetic field behavior of the electrical resistivity. In the vicinity of the Curie temperature, TC = 197 K, the intensity of the Jahn-Teller stretching mode at 614 cm-1 and of the bending mode at 443 cm-1 was found to be suppressed and enhanced, respectively. This observed behavior has a remarkable similarity with the field and temperature dependence of the colossal magnetoresistance in (La0.6Pr0.4)0.7Ca0.3MnO3. Our work provides direct evidence that the reduction of the amount of Jahn-Teller polarons at the phase transition is the main mechanism underlying the colossal magnetoresistance.
Issue Date
2019
Journal
Scientific Reports 
Project
SFB 1073: Kontrolle von Energiewandlung auf atomaren Skalen 
SFB 1073 | Topical Area A | A02 Verständnis und Manipulation von Dissipationskanälen des Energietransports 
SFB 1073 | Topical Area B | B01 Photon-induced structural phase transition controlled by electronic correlations 
SFB 1073 | Topical Area B | B04 External field control of photon energy conversion in manganites 
Organization
Fakultät für Physik 
Language
English

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