paper

Persistent structural distortions and absent superconductivity in trilayer nickelate thin films

arXiv:2606.20941

Abstract

A new family of high-temperature superconductors was recently discovered in the Ruddlesden-Popper nickelates, where superconductivity emerges concomitant with suppression of parent density waves and structural octahedral rotations under hydrostatic pressure. Intriguingly, compressive strain mimics the structural effects of pressure in the phase, yielding ambient-pressure superconductivity. However, analogous strain-stabilized superconductivity has not been realized in the . Here, we use atomically-precise synthesis, transport, picoscale electron microscopy, and synchrotron X-ray diffraction to probe LaNiO thin films. Although compressive strain suppresses density wave order, we do not observe superconductivity even under the largest strain state. Importantly, we identify a structural distortion unique to strained thin films that may inhibit superconductivity: persistent, layer-inequivalent octahedral rotations around the -axis. Our results highlight key differences between the and systems, suggesting that ambient-pressure superconductivity in the may require new methods beyond epitaxial strain engineering.

A.Y.J. and M.B.S. contributed equally

Persistent structural distortions and absent superconductivity in trilayer nickelate thin films · wovepaper