English

Dynamic manipulation in piezoresponse force microscopy: creating non-equilibrium phases with large electromechanical response

Mesoscale and Nanoscale Physics 2020-01-13 v1 Materials Science Applied Physics

Abstract

Domains walls and topological defects in ferroelectric materials have emerged as a powerful new paradigm for functional electronic devices including memory and logic. Similarly, wall interactions and dynamics underpin a broad range of mesoscale phenomena ranging from giant electromechanical responses to memory effects. Exploring the functionalities of individual domain walls, their interactions, and controlled modifications of the domain structures is crucial for applications and fundamental physical studies. However, the dynamic nature of these features severely limits studies of their local physics since application of local biases or pressures in piezoresponse force microscopy induce wall displacement as a primary response. Here, we introduce a fundamentally new approach for the control and modification of domain structures based on automated experimentation whereby real space image-based feedback is used to control the tip bias during ferroelectric switching, allowing for modification routes conditioned on domain states under the tip. This automated experiment approach is demonstrated for the exploration of domain wall dynamics and creation of metastable phases with large electromechanical response.

Keywords

Cite

@article{arxiv.2001.03586,
  title  = {Dynamic manipulation in piezoresponse force microscopy: creating non-equilibrium phases with large electromechanical response},
  author = {Kyle P. Kelley and Yao Ren and Anna N. Morozovska and Eugene A. Eliseev and Yoshitaka Ehara and Hiroshi Funakubo and Thierry Giamarchi and Nina Balke and Rama K. Vasudevan and Ye Cao and Stephen Jesse and Sergei V. Kalinin},
  journal= {arXiv preprint arXiv:2001.03586},
  year   = {2020}
}
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