| Literature DB >> 32931257 |
Wenrui Zhang1, Alessandro R Mazza1, Elizabeth Skoropata1, Debangshu Mukherjee2, Brianna Musico3, Jie Zhang1, Veerle M Keppens3, Lihua Zhang4, Kim Kisslinger4, Eli Stavitski5, Matthew Brahlek1, John W Freeland6, Ping Lu7, Thomas Z Ward1.
Abstract
The layered Ruddlesden-Popper crystal structure can host a broad range of functionally important behaviors. Here we establish extraordinary configurational disorder in a layered Ruddlesden-Popper (RP) structure using entropy stabilization assisted synthesis. A protype A2CuO4 RP cuprate oxide with five cations on the A-site sublattice is designed and fabricated into epitaxial single crystal films using pulsed laser deposition. When grown on a near lattice matched substrate, the (La0.2Pr0.2Nd0.2Sm0.2Eu0.2)2CuO4 film features a T'-type RP structure with uniform A-site cation mixing and square-planar CuO4 units. These observations are made with a range of combined characterizations using X-ray diffraction, atomic-resolution scanning transmission electron microscopy, energy-dispersive X-ray spectroscopy, and X-ray absorption spectroscopy measurements. It is further found that heteroepitaxial strain plays an important role in crystal phase formation during synthesis. Compressive strain over ∼1.5% results in the formation of a non-RP cubic phase consistent with a CuX2O4 spinel structure. The ability to manipulate configurational complexity and move between 2D layered RP and 3D cubic crystal structures in cuprate and related materials promises to enable flexible design strategies for a range of functionalities, such as magnetoresistance, unconventional superconductivity, ferroelectricity, catalysis, and ion transport.Entities:
Keywords: configurational complexity; cuprate; epitaxy; high entropy oxides; phase transition; synthesis
Year: 2020 PMID: 32931257 DOI: 10.1021/acsnano.0c04487
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881