JOŽEF STEFAN INSTITUTE
Department of Complex Matter
Jamova cesta 39, 1000 Ljubljana, Slovenia

Dynamics of Quantum matter

We explore non-equilibrium many-body dynamics in quantum systems that experience symmetry-breaking, topological, or jamming transitions. These systems encompass superconductors, charge-density wave, and magnetic materials.

Experimental Soft Matter Physics

The research is conducted within the “Light and Matter” research program. The interaction of light with matter is one of the most important fields of physics and optical processes are indispensable in many branches of modern industry.

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May 19, 2026, 15:00, MPŠ Lecture Room
Speaker: Yaroslav Gerasimenko, Department of Chemistry, University of Graz Department of Physics and Regensburg Center for Ultrafast Nanoscopy (RUN), University of Regensburg
We can increasingly drive quantum materials into new states with ultrafast light – but we still rarely watch these transformations unfold simultaneously in real time and real space, down to the atomic scale. ...
Home / Projects / Ongoing / FEMTOGAPENGINE – Femtosecond laser superconducting circuit gap engineering

FEMTOGAPENGINE – Femtosecond laser superconducting circuit gap engineering

PR-14134 | 01.8.2026 – 31.1.2028
Dragan D. Mihailović

Femtosecond laser tuning of superconducting quantum circuits introduces a revolutionary new approach to addressing noise and decoherence in quantum processors. If successfully applied, it could represent a transformative leap forward in superconducting quantum chip technology. Our recent discovery of femtosecond pulse-tuneable increase of superconducting Tc of superconducting Al films on Si chip substrates provides a fundamentally new post-fabrication capability: the creation of designer superconducting energy landscapes on-chip, in-situ with in-operando tuning quasiparticle sinks, quasiparticle barriers and engineered gap profiles defined with micron-scale precision that is compatible with industry standard circuit layouts and operational procedures.
The aim of the PoC is to build a prototype machine and implement it on a dilution refrigerator for demonstrating in-situ and in-operando superconducting circuit tuning and testing. The laser-processing parameter space will be explored and correlated with long-term stability, fabrication processes and operation compatibility. The ambition of this time-sensitive project is not incremental optimization, but the developing of a new technological paradigm: programming superconducting circuits by light. A successful outcome would establish the first laser-defined platform for local superconducting gap-engineering and provide a scalable route toward improved quasiparticle management in quantum processors, superconducting detectors, resonators, and hybrid quantum devices. A technology that could actively reduce noise would be monumental, marking a major milestone for the quantum computing industry. IP protection and definition of a marketing
strategy will form an essential part of the PoC.