Encapsulation epitaxy of air-stable 2D superconductors for quantum circuits.
basic_science · Level V
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- Record sourced from PubMed, PMID 42557326.
- Also identified by DOI 10.1038/s41586-026-10865-1.
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Abstract
Two-dimensional (2D) superconductors are emerging platforms supporting both strongly correlated physics and quantum information science<sup>1,2</sup>. Their reduced dimensionality, atomically flat interfaces and high crystallinity are particularly attractive for realizing compact lumped-element devices in superconducting circuits<sup>3-5</sup>. However, large-scale synthesis of monolayer 2D superconductors remains challenging as they are easily oxidized in air<sup>6</sup>. Here we report an 'encapsulation epitaxy' mechanism that enables the growth of large-area (more than 1 inch), air-stable, monolayer niobium diselenide (NbSe<sub>2</sub>) films (1L-NbSe<sub>2</sub>) and explore their potential for superconducting quantum circuits. This work represents a distinct growth phenomenon in which a 2D encapsulation layer, such as graphene or hexagonal boron nitride, pre-deposited on a 3D substrate (for example, SiO<sub>2</sub> or Si<sub>3</sub>N<sub>4</sub>) simultaneously serves as a template for the epitaxial growth of 1L-NbSe<sub>2</sub> underneath it at the encapsulation-substrate interface and as a protective capping layer against ambient degradation. The as-grown 1L-graphene/NbSe<sub>2</sub> heterostructures exhibit robust superconductivity (superconducting transition temperature T<sub>c</sub> ≈ 1 K) and enhanced charge density waves (CDWs; CDW transition temperature T<sub>CDW</sub> ≈ 177 K). We further demonstrate the integration of 1L-NbSe<sub>2</sub> into superconducting circuits by developing oxidation-free transfer and superconducting edge-contact techniques. The 1L-NbSe<sub>2</sub> in these circuits feature a measured kinetic inductance L<sub>K</sub> ≈ 0.7 nH □<sup>-1</sup>, making it suitable for quantum circuits requiring elements with high kinetic inductance. This encapsulation-epitaxy methodology enables the production of air-stable 2D superconductors and van der Waals heterostructures, holding promise for wafer-scale, monolithic fabrication of superconducting quantum circuitry.