Epitaxial AlBN/β‐Nb2N Ferroelectric/Superconductor Heterostructures

Author:

Savant Chandrashekhar1ORCID,Nguyen Thai‐Son1ORCID,Vishwakarma Saurabh2ORCID,Lee Joongwon3ORCID,Ithepalli Anand1ORCID,Chen Yu‐Hsin1ORCID,Nomoto Kazuki3,Rana Farhan3,Smith David J.4ORCID,Xing Huili Grace135,Jena Debdeep135ORCID

Affiliation:

1. Department of Materials Science and Engineering Cornell University Ithaca NY 14853 USA

2. School for Engineering of Matter, Transport and Energy Arizona State University Tempe Arizona 85287 USA

3. School of Electrical and Computer Engineering Cornell University Ithaca NY 14853 USA

4. Department of Physics Arizona State University Tempe Arizona 85287 USA

5. Kavli Institute at Cornell for Nanoscale Science Cornell University Ithaca NY 14853 USA

Abstract

We report the growth of AlBN/β‐Nb2N nitride epitaxial heterostructures in which the AlBN is ferroelectric, and β‐Nb2N with metallic resistivity ≈40 μ at 300 K becomes superconducting below TC ≈ 0.5 K. Using nitrogen plasma molecular beam epitaxy, we grow hexagonal β‐Nb2N films on c‐plane Al2O3 substrates, followed by wurtzite AlBN. The AlBN is in epitaxial registry and rotationally aligned with the β‐Nb2N, and the hexagonal lattices of both nitride layers make angles of 30° with the hexagonal lattice of the Al2O3 substrate. The B composition of the AlBN layer is varied from 0 to 14.7%. It is found to depend weakly on the B flux, but increases strongly with decreasing growth temperature, indicating a reaction rate‐controlled growth. The increase in B content causes a non‐monotonic change in the a‐lattice constant and a monotonic decrease in the c‐lattice constant of AlBN. Sharp, abrupt epitaxial AlBN/β‐Nb2N/Al2O3 heterojunction interfaces and close symmetry matching are observed by transmission electron microscopy. The observation of ferroelectricity and superconductivity in epitaxial nitride heterostructures opens avenues for novel electronic and quantum devices.

Funder

National Science Foundation

National Nanotechnology Coordinating Office

Publisher

Wiley

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