Concurrent transition of ferroelectric and magnetic ordering near room temperature

Strong spin-lattice coupling in condensed matter gives rise to intriguing physical phenomena such as colossal magnetoresistance and giant magnetoelectric effects. The phenomenological hallmark of such a strong spin-lattice coupling is the manifestation of a large anomaly in the crystal structure at...

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Veröffentlicht in:Nature communications 2011-11, Vol.2 (1), p.567-567, Article 567
Hauptverfasser: Ko, Kyung-Tae, Jung, Min Hwa, He, Qing, Lee, Jin Hong, Woo, Chang Su, Chu, Kanghyun, Seidel, Jan, Jeon, Byung-Gu, Oh, Yoon Seok, Kim, Kee Hoon, Liang, Wen-I, Chen, Hsiang-Jung, Chu, Ying-Hao, Jeong, Yoon Hee, Ramesh, Ramamoorthy, Park, Jae-Hoon, Yang, Chan-Ho
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Sprache:eng
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Zusammenfassung:Strong spin-lattice coupling in condensed matter gives rise to intriguing physical phenomena such as colossal magnetoresistance and giant magnetoelectric effects. The phenomenological hallmark of such a strong spin-lattice coupling is the manifestation of a large anomaly in the crystal structure at the magnetic transition temperature. Here we report that the magnetic Néel temperature of the multiferroic compound BiFeO 3 is suppressed to around room temperature by heteroepitaxial misfit strain. Remarkably, the ferroelectric state undergoes a first-order transition to another ferroelectric state simultaneously with the magnetic transition temperature. Our findings provide a unique example of a concurrent magnetic and ferroelectric transition at the same temperature among proper ferroelectrics, taking a step toward room temperature magnetoelectric applications. Magnetoelectric materials combine ferroelectric and magnetic properties through a coupling of the spin and lattice degrees of freedom. Here, magnetoelectric bismuth ferrite is found to simultaneously undergo both a magnetic and a ferroelectric transition at the same temperature.
ISSN:2041-1723
2041-1723
DOI:10.1038/ncomms1576