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Roadmap on nanoscale superconductivity for quantum technologies

  • Oleksandr Dobrovolskiy*
  • , Hermann Suderow
  • , Francesco Tafuri
  • , Annica M. Black-Schaffer
  • , Jose L. Lado
  • , Asle Sudbø
  • , Daniela Stornaioulo
  • , Chuan Li
  • , Anna E. Böhmer
  • , Lan Maria Tran
  • , Andrzej J. Zaleski
  • , Adrian Crisan
  • , Massimiliano Polichetti
  • , Armando Galluzzi
  • , Ali Gencer
  • , Bernd Aichner
  • , Neven Barišić
  • , Wolfgang Lang
  • , Tomas Samuely
  • , Martin Gmitra
  • Tristan Cren, Mateo Calandra, Peter Samuely, Jeroen Custers, Rosa Córdoba, Vladimir M. Fomin, Nicola Poccia, Pavol Szabó, Fabrizio Porrati, Gleb Kakazei, Jan Aarts, Jason Robinson, Javier E. Villegas, Matthias Althammer, Hans Huebl, Akashdeep Kamra, Mathias Weiler, J. Hugo Dil, Daniil Evtushinsky, Beena Kalisky, Yonathan Anahory, Simon Bending, Peter Liljeroth, Abdou Hassanien, Isabel Guillamón, Edwin Herrera, Alejandro V. Silhanek, Joris Van de Vondel, Anna Palau, Ilya Charaev, Maria Sidorova, Floriana Lombardi, Thilo Bauch, Cheryl Feuillet-Palma, Vasily Stolyarov, Dimitri Roditchev, Vladimir M. Krasnov, Benedikt Hampel, María José Martínez-Pérez, Javier Sesé, Dieter Koelle, Stefano Poletto, Alessandro Bruno, Davide Massarotti
*Corresponding author for this work

Research output: Contribution to journalReview articlepeer-review

5 Scopus citations

Abstract

In 2025, the Year of Quantum Science and Technology (https://quantum2025.org/), we celebrate a century of quantum mechanics, witnessing a surge in activities that illuminate its inherent strangeness and drive technological innovation. Superconductivity, discovered 114 years ago, stands as a prime example, offering direct and compelling evidence of macroscopic quantum phenomena. Beyond its ability to conduct immense currents without loss, superconductivity reveals the quantum realm operating on a scale we can directly observe and manipulate. The macroscopic quantum coherence, where an ensemble of particles is described by a single wave function, leads to remarkable consequences: dissipation-less current and flux quantization—the basic properties exploited in superconducting quantum circuit fabrication. This Roadmap has been inspired by intensive discussions and collaborations emerging from the European Cooperation in Science & Technology COST-Action CA21144 (SuperQuMap—Superconducting Nanodevices and Quantum Materials for Coherent Manipulation). The aim of the COST Action SuperQuMap is to establish a strong European network centered on macroscopic quantum behavior in superconductors, bringing together groups of different backgrounds and more than 30 countries. The roadmap outlines the network’s concrete activities, driving advancements in superconductor-based quantum technologies and charting future directions. Spanning fundamental research to practical applications, the roadmap incorporates insights from industry partners developing quantum computation. It begins by exploring quantum materials, highlighting how topology and electronic correlations could catalyze a quantum leap in technology. We then delve into manipulating the superconducting phase, leveraging advancements in magnetism, 3D fabrication, and tunable correlations. Further, we showcase the advanced microscopy techniques—such as angle-resolved photoemission spectroscopy and scanning probes—used to visualize quantum behavior. Finally, and crucially, we detail the quantum devices developed within the network, and their transformative impact on modern quantum computing approaches.

Original languageEnglish
Article number023502
JournalSuperconductor Science and Technology
Volume39
Issue number2
DOIs
StatePublished - 1 Feb 2026

Bibliographical note

Publisher Copyright:
© 2026 The Author(s). Published by IOP Publishing Ltd.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 9 - Industry, Innovation, and Infrastructure
    SDG 9 Industry, Innovation, and Infrastructure

Keywords

  • Josephson devices
  • local probe techniques
  • magnetic flux quanta
  • quantum materials
  • quantum technologies
  • superconductor–ferromagnet hybrids
  • topological superconductivity

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