Preparation and physical property tuning of superconducting nickelate thin films via oxide molecular-beam epitaxy
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Abstract
Superconducting nickelates are another important class of layered oxide superconductors discovered after cuprates, providing a brand-new material platform for exploring the microscopic mechanisms of high-temperature superconductivity. In recent years, superconductivity has been successively observed in square-planar and Ruddlesden-Popper nickelates,making the nickelate family a rapidly developing field in condensed matter physics. However,the macroscopic physical properties of superconducting nickelate thin films are extremely sensitive to stoichiometry,interface structure,strain state,and oxygen content. Oxide molecular-beam epitaxy(OMBE),with its capability for atomic-level precise control of composition,interface structure,and in situ monitoring,plays an important role in the growth of high-quality thin films. This article first briefly reviews the history and basic principles of OMBE,then summarizes its latest applications in the preparation of superconducting nickelate thin films. In-depth discussions are focused on key issues including stoichiometry control,polar-interface engineering,in situ topotactic reduction,synthesis of freestanding membranes, optimization of atomic-layer deposition sequences,and heterovalent cation doping. Finally,the prospects of this technology for structural design and property manipulation of superconducting nickelates are discussed.
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