Reversible Optical Control of Polarization in Epitaxial Ferroelectric Thin Films

ADVANCED MATERIALS(2024)

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摘要
Light is an effective tool to probe the polarization and domain distribution in ferroelectric materials passively, that is, non-invasively, for example, via optical second harmonic generation (SHG). With the emergence of oxide electronics, there is now a strong demand to expand the role of light toward active control of the polarization. In this work, optical control of the ferroelectric polarization is demonstrated in prototypical epitaxial PbZrxTi1-xO3 (PZT)-based heterostructures. This is accomplished in three steps, using above-bandgap UV light, while tracking the response of the polarization with optical SHG. First, it is found that UV-light exposure induces a transient enhancement or suppression of the ferroelectric polarization in films with an upward- or downward-oriented polarization, respectively. This behavior is attributed to a modified charge screening driven by the separation of photoexcited charge carriers at the Schottky interface of the ferroelectric thin film. Second, by taking advantage of this optical handle on electrostatics, remanent optical poling from a pristine multi-domain into a single-domain configuration is accomplished. Third, via thermal annealing or engineered electrostatic boundary conditions, a complete reversibility of the optical poling is further achieved. Hence, this work paves the way for the all-optical control of the spontaneous polarization in ferroelectric thin films. Reversible optical control of the ferroelectric polarization is accomplished in epitaxial PbZrxTi1-xO3 (PZT) thin films using UV light. For single-domain films, a transient modulation of the polarization magnitude occurs, mediated by the separation of photoexcited charge carriers in the Schottky interface. In PZT films at the morphotropic phase boundary, room-temperature remanent optical poling is realized that can be reversed via thermal annealing. image
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关键词
epitaxial thin films,ferroelectrics,optical control,piezoresponse force microscopy,PZT,second harmonic generation
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