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Prof. Weida Wu: Direct visualization of domain wall magnetism and magnetoelectric domains (2014/01/14)

( 2014-01-09 )

Title

Direct visualization of domain wall magnetism and magnetoelectric domains

Speaker

 

Prof. Weida Wu

Rutgers Center for Emergent Materials and Department of Physics and Astronomy,

Rutgers University

                   

    

Time

10:00am, January 14, 2014

Place

Room 9004 at the HFNL building

Abstract

Multiferroics are materials with coexisting magnetic and ferroelectric orders, where the cross-coupling between two ferroic orders can result in strong magnetoelectric effects [1-4]. Therefore, it is of both fundamental and technological interest to visualize cross-coupled magnetoelectric domains and domain walls in multiferroics. Recently, intriguing topological defects with six interlocked structural antiphase and ferroelectric domains merging into a vortex core were revealed in multiferroic hexagonal REMnO3 (RE=rare earths) [5, 6]. Many emergent phenomena, such as enhanced conduction and unusual piezoelectric response, were observed in charged ferroelectric domain walls protected by these topological defects [7, 8]. More interestingly, alternating uncompensated magnetic moments were discovered at coupled structural antiphase and ferroelectric domain walls in hexagonal manganites using cryogenic magnetic force microscopy (MFM) [9], which demonstrates the cross-coupling between ferroelectric and magnetic orders. Using a newly-developed Magnetoelectric Force Microscopy (MeFM), which combines MFM with in-situ modulating high electric fields, we directly visualize the magnetoelectric response of the multiferroic domains in hexagonal manganites, which opens up explorations of emergent phenomena in multifunctional materials with multiple coupled orders [10].

Reference

[1]  N. A. Spaldin, and M. Fiebig, Science 309, 391 (2005).

[2]  W. Eerenstein, N. D. Mathur, and J. F. Scott, Nature 442, 759 (2006).

[3]  S. W. Cheong, and M. Mostovoy, Nat. Mater. 6, 13 (2007).

[4]  N. A. Spaldin, S.-W. Cheong, and R. Ramesh, in Physics Today2010), pp. 38.

[5]  T. Choi et al., Nature Materials 9, 253 (2010).

[6]  T. Jungk et al., Appl. Phys. Lett. 97, 012904 (2010).

[7]  E. B. Lochocki et al., Appl. Phys. Lett. 99, 232901 (2011).

[8]  W. Wu et al., Phys. Rev. Lett. 108, 077203 (2012).

[9]  Y. Geng et al., Nano Letters 12, 6055−6059 (2012).

[10]  Y. Geng et al., Nat. Mater. AOP (2014).


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