Hidden Structural Variants in ALD NbN Superconducting Trilayers Revealed by Atomistic Analysis
- URL: http://arxiv.org/abs/2512.07095v1
- Date: Mon, 08 Dec 2025 02:25:29 GMT
- Title: Hidden Structural Variants in ALD NbN Superconducting Trilayers Revealed by Atomistic Analysis
- Authors: Prachi Garg, Danqing Wang, Hong X. Tang, Baishakhi Mazumder,
- Abstract summary: Microscopic inhomogeneity within superconducting films is a critical bottleneck hindering the performance and scalability of quantum circuits.<n>All-nitride Josephson Junctions (JJs) have attracted substantial attention for their potential to provide enhanced coherence times and enable higher temperature operation.<n>This work diagnoses atomic-scale limitations preventing superconducting NbN/AlN/NbN JJs from reaching their full potential.
- Score: 6.408512681137013
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Microscopic inhomogeneity within superconducting films is a critical bottleneck hindering the performance and scalability of quantum circuits. All-nitride Josephson Junctions (JJs) have attracted substantial attention for their potential to provide enhanced coherence times and enable higher temperature operation. However, their performance is often limited by local variations caused by polymorphism, impurities, and interface quality. This work diagnoses atomic-scale limitations preventing superconducting NbN/AlN/NbN JJs from reaching their full potential. Electrical measurements reveal suppressed critical current density and soft onset of quasiparticle current. However, inverse proportionality between resistance and junction area confirms homogenous barrier thickness. This isolates structural and chemical variations in electrodes and barrier as the source of performance limitation. The observed characteristics are attributed to complex materials problems: NbN polymorphism, phase coexistence, and oxygen impurities. Using advanced microscopy and machine learning integrated approach, nanoscale inclusions of epsilon-Nb2N2 are found to coexist within dominant delta-NbN electrodes. DC performance of JJs may be affected by these defects, leading to unresolved supercurrent and soft transition to normal state. By identifying specific atomic scale defects, tracing its origin to initial film nucleation, and linking to its detrimental electrical signature, this work establishes a material-to-device correlation and provides targeted strategy for phase engineering towards reproducible, high coherence and scalable quantum devices.
Related papers
- Low-Gap Hf-HfOx-Hf Josephson Junctions for meV-Scale Particle Detection [0.0]
We report the fabrication and characterization of hafnium-based Josephson junctions (Hf-HfOx-Hf)<n>Hf-HfOx-Hf is a promising low-Tc material platform for ultra-low threshold single THz photon and single-phonon detection.<n>This work presents the first comprehensive study of Hf-based junctions and their potential for next-generation superconducting detectors and qubit architectures.
arXiv Detail & Related papers (2025-10-29T06:15:35Z) - Zero-field identification and control of hydrogen-related electron-nuclear spin registers in diamond [73.17247851945764]
We introduce an approach to identify the hyperfine components and nuclear spin species of spin defects through measurements on a nearby NV center.<n>Results provide a guide to resolving the defect structures using $textitab initio$ calculations.<n>Our characterization and control tools establish a framework to expand the defect landscape for hybrid electron-nuclear registers.
arXiv Detail & Related papers (2025-10-22T13:50:54Z) - Disorder-Engineered Hybrid Plasmonic Cavities for Emission Control of Defects in hBN [0.0]
Defect-based quantum emitters in hexagonal boron nitride (hBN) are promising building blocks for scalable quantum photonics.<n>This study demonstrates a low-cost, fabrication approach to integrate plasmonic nanocavities with defect-based quantum emitters in hBN nanoflakes.
arXiv Detail & Related papers (2025-06-17T13:46:15Z) - Electron-Electron Interactions in Device Simulation via Non-equilibrium Green's Functions and the GW Approximation [71.63026504030766]
electron-electron (e-e) interactions must be explicitly incorporated in quantum transport simulation.<n>This study is the first one reporting large-scale atomistic quantum transport simulations of nano-devices under non-equilibrium conditions.
arXiv Detail & Related papers (2024-12-17T15:05:33Z) - Transport properties and quantum phase transitions in one-dimensional superconductor-ferromagnetic insulator heterostructures [44.99833362998488]
We propose a one-dimensional electronic nanodevice inspired in recently fabricated semiconductor-superconductor-ferromagnetic insulator hybrids.
We show that the device can be tuned across spin- and fermion parity-changing QPTs by adjusting the FMI layer length orange and/or by applying a global backgate voltage.
Our findings suggest that these effects are experimentally accessible and offer a robust platform for studying quantum phase transitions in hybrid nanowires.
arXiv Detail & Related papers (2024-10-18T22:25:50Z) - Site-Controlled Purcell-Induced Bright Single Photon Emitters in Hexagonal Boron Nitride [62.170141783047974]
Single photon emitters hosted in hexagonal boron nitride (hBN) are essential building blocks for quantum photonic technologies that operate at room temperature.
We experimentally demonstrate large-area arrays of plasmonic nanoresonators for Purcell-induced site-controlled SPEs.
Our results offer arrays of bright, heterogeneously integrated quantum light sources, paving the way for robust and scalable quantum information systems.
arXiv Detail & Related papers (2024-05-03T23:02:30Z) - Topological Josephson Junctions in the Integer Quantum Hall Regime [42.408991654684876]
tunable Josephson junctions (TJJs) are desirable platforms for investigating the anomalous Josephson effect and topological quantum insulator applications.
We propose a robust and electrostatically tunable TJJ by combining the physics of the integer quantum Hall (IQH) regime and of superconductors.
They are of particular relevance towards scalable and robust Andreev-qubit platforms, and also for efficient phase batteries.
arXiv Detail & Related papers (2022-11-04T16:45:07Z) - Electromagnetically induced transparency in inhomogeneously broadened
divacancy defect ensembles in SiC [52.74159341260462]
Electromagnetically induced transparency (EIT) is a phenomenon that can provide strong and robust interfacing between optical signals and quantum coherence of electronic spins.
We show that EIT can be established with high visibility also in this material platform upon careful design of the measurement geometry.
Our work provides an understanding of EIT in multi-level systems with significant inhomogeneities, and our considerations are valid for a wide array of defects in semiconductors.
arXiv Detail & Related papers (2022-03-18T11:22:09Z) - TOF-SIMS Analysis of Decoherence Sources in Nb Superconducting
Resonators [48.7576911714538]
Superconducting qubits have emerged as a potentially foundational platform technology.
Material quality and interfacial structures continue to curb device performance.
Two-level system defects in the thin film and adjacent regions introduce noise and dissipate electromagnetic energy.
arXiv Detail & Related papers (2021-08-30T22:22:47Z) - Discovery of Nb hydride precipitates in superconducting qubits [37.69303106863453]
We report the first evidence of the formation of niobium hydrides within niobium films on silicon in superconducting qubits fabricated at Rigetti Computing.
High-resolution transmission electron microscopy (HRTEM) analyses are performed at room and cryogenic temperatures (106 K) on superconducting qubit niobium film areas.
Our findings highlight a new previously unknown source of decoherence in superconducting qubits, contributing to both quasi and two-level system (TLS) losses.
arXiv Detail & Related papers (2021-08-23T20:01:38Z) - Quantum Sensors for Microscopic Tunneling Systems [58.720142291102135]
tunneling Two-Level-Systems (TLS) are important for micro-fabricated quantum devices such as superconducting qubits.
We present a method to characterize individual TLS in virtually arbitrary materials deposited as thin-films.
Our approach opens avenues for quantum material spectroscopy to investigate the structure of tunneling defects.
arXiv Detail & Related papers (2020-11-29T09:57:50Z) - Observation of Distinct Superconducting Phases in Hyperdoped p-type
Germanium [0.0]
We report systematic synthesis and characterization of superconducting phases in hyperdoped Germanium.
Surprisingly, we find a nano-crystalline phase with quasi-2D characteristics consisting of a thin Ga film constrained near top surfaces.
Our results suggest the possibility of integration of hyperdoped Ge nano-crystalline phase into superconducting circuits due to its 2D nature.
arXiv Detail & Related papers (2020-08-13T18:06:40Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.