Polarization Boost and Ferroelectricity Down to One Unit Cell in Layered Carpy-Galy La<sub>2</sub>Ti<sub>2</sub>O<sub>7</sub> Thin Films.

Gradauskaite, Elzbieta; Goossens, Anouk S; Li, Xiaoyan; Iglesias, Lucía; Gloter, Alexandre; Meier, Quintin N; Bibes, Manuel · Adv Mater · 2025

basic_science · Level V

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Abstract

Layered perovskite-based compounds offer a range of unconventional properties enabled by their naturally anisotropic structure. Among these, the Carpy-Galy phases (A<sub>n</sub>B<sub>n</sub>O<sub>3n+2</sub>), characterized by (110)-oriented perovskite planes interleaved with additional oxygen layers, stand out for robust in-plane polarization. However, the challenges associated with the synthesis of ultrathin Carpy-Galy films and understanding the impact of strain on their properties limit their integration into devices. Here, La<sub>2</sub>Ti<sub>2</sub>O<sub>7</sub> (n = 4) films grown on substrates imposing tensile, compressive, or negligible epitaxial strains are investigated. Surprisingly, a 3% tensile strain from DyScO<sub>3</sub> (100) substrates facilitates layer-by-layer growth mode, whereas compressive (LaAlO<sub>3</sub>-Sr<sub>2</sub>TaAlO<sub>6</sub> (110)) or negligible (SrTiO<sub>3</sub> (110)) epitaxial strains require post-deposition annealing to reach comparable crystallinity. Using density-functional theory calculations, scanning probe microscopy, X-ray diffraction, scanning transmission electron microscopy, and polarization switching experiments, it is confirmed that these films possess exceptional ferroelectric properties, including a polarization of 18 µCcm<sup>-2</sup> - more than three times higher than previously reported - as well as persistence of ferroelectricity down to a single-unit-cell thickness. This study not only advances the understanding of Carpy-Galy phases as epitaxial thin films but also lays a foundation for their integration into advanced ferroelectric device architectures.