Suguru Yoshida, Olivier Hernandez, Jinsuke Miyake, Kei Nakayama, Ryo Ishikawa, Hajime Hojo, Yuichi Ikuhara, Venkatraman Gopalan, Katsuhisa Tanaka, Koji Fujita
While defects are unavoidable in crystals and often detrimental to material performance, they can be a key ingredient for inducing functionalities when tailored. Here, we show that an A-site-deficient perovskite Y 1/3 TaO 3 exhibits switching-like polarization response at room temperature in the Pb 2 1 m phase, enabled by ordered vacancies coupled with TaO 6 octahedral rotations. Defect-ordered perovskites are frequently trapped in centrosymmetric incommensurate states due to competing structural instabilities; we circumvent this by favoring rotational over off-centering instability through compositional selection. Unlike canonical improper ferroelectrics that are ferrielectric, the vanishing dipoles on vacancy layers in Y 1/3 TaO 3 allow for a net ferroelectric alignment of local dipoles, resulting in enhanced polarization. Upon heating, Y 1/3 TaO 3 transforms to a paraelectric incommensurate phase at ≃750 K, whose atomic arrangement mirrors the domain topology observed in hybrid improper ferroelectrics. Superspace analysis of the modulated phase reveals a route to improve room-temperature polarization, achieved through epitaxial strain, as confirmed by our lattice-dynamics calculations. This defect-ordering strategy should be generalizable to other improper ferroelectrics, including magnetoelectric multiferroics, providing a pathway to amplify otherwise limited macroscopic polarization.