Ferroelastic Domain Dynamics as a Function of Aspect Ratio

Abstract number
299
Presentation Form
Poster
Corresponding Email
[email protected]
Session
Poster Session 4
Authors
Mr John Scott (1), Dr Blai Casals (2), Prof Ekhard Salje (2), Prof Marty Gregg (1), Dr Miryam Arredondo (1)
Affiliations
1. Queen's University Belfast
2. University of Cambridge
Keywords

- In-situ Microscopy Techniques

- Dynamic EM

- Microscopy of interfaces

- Nanomaterials

Abstract text

The abstract content is not included at the request of the author.

References

[1] Salje, E.K.H., 2010. Multiferroic Domain Boundaries as Active Memory Devices: Trajectories Towards Domain Boundary Engineering. ChemPhysChem 11, 940–950.. doi:10.1002/cphc.200900943

[2] Salje, E.K.H., 2020. Ferroelastic domain walls as templates for multiferroic devices. Journal of Applied Physics 128, 164104.. doi:10.1063/5.0029160

[3] Rojac, T., Bencan, A., Drazic, G., Sakamoto, N., Ursic, H., Jancar, B., Tavcar, G., Makarovic, M., Walker, J., Malic, B., Damjanovic, D., 2017. Domain-wall conduction in ferroelectric BiFeO3 controlled by accumulation of charged defects. Nature Materials 16, 322–327.. doi:10.1038/nmat4799

[4] Gao, P., Britson, J., Nelson, C.T., Jokisaari, J.R., Duan, C., Trassin, M., Baek, S.-H., Guo, H., Li, L., Wang, Y., Chu, Y.-H., Minor, A.M., Eom, C.-B., Ramesh, R., Chen, L.-Q., Pan, X., 2014. Ferroelastic domain switching dynamics under electrical and mechanical excitations. Nature Communications 5.. doi:10.1038/ncomms4801

[5] Zhang, Y., Han, M.-G., Garlow, J.A., Tan, Y., Xue, F., Chen, L.-Q., Munroe, P., Valanoor, N., Zhu, Y., 2019. Deterministic Ferroelastic Domain Switching Using Ferroelectric Bilayers. Nano Letters 19, 5319–5326.. doi:10.1021/acs.nanolett.9b01782

[6] S. W. Meeks & B.A. Auld (1988) 'Optical and Acoustic Device Applications of Ferroelastic Crystals', in Peter W. Hawkes (ed.) Advances in Electronics and Electron Physics. Cambridge, Massachusetts: Academic Press, pp. 251-355.

[7] Meek, S.W., Auld, B.A., 1986. A Tunable Active Optical Ferroelastic Grating, in: .. doi:10.1109/isaf.1986.201099

[8] B. A. Auld & M. M. Fejer (1981) Elastic nonlinearity and domain wall motion in ferroelastic crystals, Ferroelectrics, 38:1, 931-934, DOI: 10.1080/00150198108209584

[9] Ekhard K. H. Salje (2012) 'Ferroelastic Materials', Annual Review of Materials Research, 42(1), pp. 265-283.

[10] A. Aird & E. K. H. Salje (1998) 'Sheet superconductivity in twin walls: experimental evidence of ', J. Phys.: Condens. Matter, 10(22), pp. L377-L380

[11] Rojac, T., Bencan, A., Drazic, G., Sakamoto, N., Ursic, H., Jancar, B., Tavcar, G., Makarovic, M., Walker, J., Malic, B., Damjanovic, D., 2017. Domain-wall conduction in ferroelectric BiFeO3 controlled by accumulation of charged defects. Nature Materials 16, 322–327.. doi:10.1038/nmat4799

[12] Zhao, H.J., Íñiguez, J., 2019. Creating multiferroic and conductive domain walls in common ferroelastic compounds. npj Computational Materials 5.. doi:10.1038/s41524-019-0229-5

[13] Khomskii, D.I., 2006. Multiferroics: Different ways to combine magnetism and ferroelectricity. Journal of Magnetism and Magnetic Materials 306, 1–8.. doi:10.1016/j.jmmm.2006.01.238

[14] Lu, C., Wu, M., Lin, L., Liu, J.-M., 2019. Single-phase multiferroics: new materials, phenomena, and physics. National Science Review 6, 653–668.. doi:10.1093/nsr/nwz091

[15] Sethna, J.P., Dahmen, K.A., Myers, C.R., 2001. Crackling noise. Nature 410, 242–250.. doi:10.1038/35065675

[16] Casals, B., Nataf, G.F., Salje, E.K.H., 2021. Avalanche criticality during ferroelectric/ferroelastic switching. Nature Communications 12.. doi:10.1038/s41467-020-20477-6

[17] Bohn, F., Durin, G., Correa, M.A., Machado, N.R., Della Pace, R.D., Chesman, C., Sommer, R.L., 2018. Playing with universality classes of Barkhausen avalanches. Scientific Reports 8.. doi:10.1038/s41598-018-29576-3

[18] Rizwan, M., Gul, S., Iqbal, T., Mushtaq, U., Farooq, M.H., Farman, M., Bibi, R., Ijaz, M., 2019. A review on perovskite lanthanum aluminate (LaAlO3), its properties and applications. Materials Research Express 6, 112001.. doi:10.1088/2053-1591/ab4629