TY - JOUR
T1 - Sub-Nanosecond Reconfiguration of Ferroelectric Domains in Bismuth Ferrite
AU - Guzelturk, Burak
AU - Yang, Tiannan
AU - Liu, Yu Chen
AU - Wei, Chia Chun
AU - Orenstein, Gal
AU - Trigo, Mariano
AU - Zhou, Tao
AU - Diroll, Benjamin T.
AU - Holt, Martin V.
AU - Wen, Haidan
AU - Chen, Long Qing
AU - Yang, Jan Chi
AU - Lindenberg, Aaron M.
N1 - Publisher Copyright:
© 2023 UChicago Argonne, LLC, Operator of Argonne National Laboratory and The Authors. Advanced Materials published by Wiley-VCH GmbH.
PY - 2023/11/2
Y1 - 2023/11/2
N2 - Domain switching is crucial for achieving desired functions in ferroic materials that are used in various applications. Fast control of domains at sub-nanosecond timescales remains a challenge despite its potential for high-speed operation in random-access memories, photonic, and nanoelectronic devices. Here, ultrafast laser excitation is shown to transiently melt and reconfigure ferroelectric stripe domains in multiferroic bismuth ferrite on a timescale faster than 100 picoseconds. This dynamic behavior is visualized by picosecond- and nanometer-resolved X-ray diffraction and time-resolved X-ray diffuse scattering. The disordering of stripe domains is attributed to the screening of depolarization fields by photogenerated carriers resulting in the formation of charged domain walls, as supported by phase-field simulations. Furthermore, the recovery of disordered domains exhibits subdiffusive growth on nanosecond timescales, with a non-equilibrium domain velocity reaching up to 10 m s−1. These findings present a new approach to image and manipulate ferroelectric domains on sub-nanosecond timescales, which can be further extended into other complex photoferroic systems to modulate their electronic, optical, and magnetic properties beyond gigahertz frequencies. This approach could pave the way for high-speed ferroelectric data storage and computing, and, more broadly, defines new approaches for visualizing the non-equilibrium dynamics of heterogeneous and disordered materials.
AB - Domain switching is crucial for achieving desired functions in ferroic materials that are used in various applications. Fast control of domains at sub-nanosecond timescales remains a challenge despite its potential for high-speed operation in random-access memories, photonic, and nanoelectronic devices. Here, ultrafast laser excitation is shown to transiently melt and reconfigure ferroelectric stripe domains in multiferroic bismuth ferrite on a timescale faster than 100 picoseconds. This dynamic behavior is visualized by picosecond- and nanometer-resolved X-ray diffraction and time-resolved X-ray diffuse scattering. The disordering of stripe domains is attributed to the screening of depolarization fields by photogenerated carriers resulting in the formation of charged domain walls, as supported by phase-field simulations. Furthermore, the recovery of disordered domains exhibits subdiffusive growth on nanosecond timescales, with a non-equilibrium domain velocity reaching up to 10 m s−1. These findings present a new approach to image and manipulate ferroelectric domains on sub-nanosecond timescales, which can be further extended into other complex photoferroic systems to modulate their electronic, optical, and magnetic properties beyond gigahertz frequencies. This approach could pave the way for high-speed ferroelectric data storage and computing, and, more broadly, defines new approaches for visualizing the non-equilibrium dynamics of heterogeneous and disordered materials.
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U2 - 10.1002/adma.202306029
DO - 10.1002/adma.202306029
M3 - Article
C2 - 37611614
AN - SCOPUS:85172870782
SN - 0935-9648
VL - 35
JO - Advanced Materials
JF - Advanced Materials
IS - 44
M1 - 2306029
ER -