Epitaxial growth and structural and electronic properties of oriented thin films of GeNi<sub>2</sub>O<sub>4</sub> and GeCu<sub>2</sub>O<sub>4</sub> spinels
ORAL
Abstract
Frustrated magnets can host exotic many-body quantum and topological phenomena. GeNi2O4 is a three-dimensional S = 1 frustrated magnet with an unusual two-stage transition to the two-dimensional antiferromagnetic ground state, while GeCu2O4 is a high-pressure phase with a strongly tetragonally distorted spinel structure and magnetic lattice formed by S = 1/2 CuO2 linear chains with frustrated interchain exchange interactions and exotic magnetic behavior. Here, we report on the first thin-film epitaxial stabilization of these two compounds in (100) and (111) directions. The developed growth mode, surface morphology, crystal structure, and valence state were characterized by in situ reflection high-energy electron diffraction, atomic force microscopy, x-ray reflectivity, x-ray diffraction, x-ray photoelectron spectroscopy, and resonant x-ray absorption spectroscopy. Our results pave an alternative route to the investigation of the puzzling magnetic properties of these compounds and the exploration of emergent features driven by strain. Furthermore, the availability of large-area high-quality GeCu2O4 thin films opens a road for future experimentation to reveal the controversial nature of its ground state magnetism and elucidate the origin of multiferroicity in this compound.
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Publication: Epitaxial stabilization of thin films of the frustrated Ge-based spinels, PHYSICAL REVIEW MATERIALS 5, 064419 (2021)
Presenters
Michael Terilli
Rutgers University, Rutgers University, New Brunswick
Authors
Michael Terilli
Rutgers University, Rutgers University, New Brunswick
Fangdi Wen
Rutgers University
Jak Chakhalian
Rutgers University, Rutgers
Mikhail S Kareev
Rutgers University, New Brunswick, Rutgers University
Xiaoran Liu
Rutgers University, New Brunswick
Liang Wu
Rutgers University, New Brunswick
Elke Arenholz
Lawrence Berkeley National Laboratory
Padraic Shafer
Advanced Light Source, Lawrence Berkeley National Laboratory, Advanced Light Source, Lawrence Berkeley National Lab, Advanced Light Source, Lawrence Berkeley National Laboratory