Scanning tunneling spectroscopy of superconducting nitridized aluminum thin films
arXiv:2601.20521 · doi:10.1007/s10909-026-03390-y
Abstract
Nitride-based superconductors represent a family of superconducting thin film materials displaying higher quality than their corresponding bare superconductor when used in devices for applications such as cosmic radiation sensing. In recent times, Niobium-based and Titanium-based nitrides were used to improve the quality of superconducting devices in quantum technology applications. Recently, nitridized Aluminum (NitrAl) has been found to display higher critical temperatures and enhanced resilience to magnetic fields compared to those of Al, making it a new interesting candidate for superconducting quantum circuit applications. However, the microscopic properties of NitrAl remain highly unexplored. Here we use Scanning Tunneling Microscope (STM) to measure the superconducting density of states of a thin film sample of nitridized-Aluminum (NitrAl), with a room temperature resistivity between pure Al and fully insulating aluminum nitride. We show that the in-gap density of states is zero up to about and that there is a distribution of values of the superconducting gap around , close to the BCS expectation . We also find varying superconducting gap values at the nanometer scale, by approximately 10\%, when probing different regions of the sample. These results suggest a gap which is larger than the one of pure Al, and is spatially more homogeneous than the superconducting gap values often found in thin films. Our work demonstrates that STM is as a powerful tool to screen materials for quantum devices through the measurement of the spatial dependence of the superconducting density of states.
References in corpus (23)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Scanning tunneling spectroscopy of high-temperature superconductors
- Quantum error correction below the surface code threshold
- Suppressing Charge Noise Decoherence in Superconducting Charge Qubits
- Localization of preformed Cooper-pairs in disordered superconductors
- Disorder-Induced Inhomogeneities of the Superconducting State Close to the Superconductor-Insulator Transition
- Superconducting density of states and vortex cores of 2H-NbS2
- Implementation of low-loss superinductances for quantum circuits
- Phase fluctuations in a strongly disordered s-wave superconductor close to the metal-insulator transition
- Quantum Superinductor with Tunable Non-Linearity
- Surface impedance and optimum surface resistance of a superconductor with imperfect surface
- Electrodynamics of granular aluminum from superconductor to insulator: observation of collective superconducting modes
- Gralmonium: Granular Aluminum Nano-Junction Fluxonium Qubit
- Reduced frequency noise in superconducting resonators
- Millikelvin scanning tunneling microscope at 20/22 T with a graphite enabled stick-slip approach and an energy resolution below 8eV: Application to conductance quantization at 20 T in single atom point contacts of Al and Au
- Extreme sensitivity of the vortex state in a-MoGe films to radio-frequency electromagnetic perturbation
- Simplified feedback control system for Scanning Tunneling Microscopy
- Band structure, superconductivity and polytypism in AuSn
- Origin of superconductivity in tungsten thin films
- Methods to simplify cooling of liquid Helium cryostats
- Superconducting nitridized-aluminum thin films
- Suppressed superconductivity in ultrathin Mo2N films due to pair-breaking at the interface
- Superconducting density of states of PtPb4