HEIndividual fellowship2022–2025

SPECTR · Shaping the future of EPR with cryoprobes and superconducting microresonators

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2022-06-01 → 2025-03-31
EU contribution
€158,598
Participants
2
Scheme
HORIZON-TMA-MSCA-PF-EF

Lines connect the coordinator with its partners.

Results in brief

Shaping the future of EPR with cryoprobes and superconducting microresonators

SPECTR (Shaping the Future of EPR with Cryoprobes and Superconducting Microresonators) set out to advance the sensitivity of Electron Paramagnetic Resonance (EPR) - a powerful but inherently low-sensitivity technique used to study materials with unpaired electrons, such as free radicals and metal complexes. EPR has applications in a wide range of fields, from biology and chemistry to materials science and quantum technologies. However, its broader use has been limited by its low sensitivity, especially in biological samples or very small quantities of matter. The project addressed this challenge by developing and applying cutting-edge hardware tools that significantly enhance EPR sensitivity. SPECTR focused on two complementary innovations: the use of cryogenically cooled EPR probeheads (cryoprobes) to boost the spin signal, and highly sensitive superconducting microwave microresonators for measurements of tiny samples. These tools build on recent breakthroughs in cryogenic low-noise amplifiers (LNA) and microresonator technology, originally developed for quantum technologies.

Data: CORDIS, © European Union

Project objective

Electron paramagnetic resonance (EPR) is a highly powerful tool employed across different disciplines including structural biology, material science, quantum information processing and many others. EPR provides essential information about a local unpaired electron spin environment, electronic properties and dynamics of various paramagnetic centers. However, a relatively low sensitivity of a conventional EPR often limits its applicability to study small-volume systems (e.g. single biological cells). Recently, major advances in the EPR sensitivity enhancement have been achieved in the field of quantum information processing using superconducting microresonators and low-noise cryogenic microwave preamplifiers. The full potential of this highly sensitive EPR approach to investigate typical spin systems in other areas still remains to be shown, which is critical for its wider application in different scientific disciplines. The main goal of this Marie Skodowska-Curie project is adaptation of these developments to study conventional spin systems and their application to solve currently EPR-inaccessible intriguing problems in biochemistry. The spin systems to be studied include a miniature amount of spin labels, a single RNA-binding protein droplet and spins in a single bacterium. The researcher, dr. Mantas imnas, will be employed in his home country (Lithuania) at Vilnius University (VU) under the supervision by prof. Jras Banys. He will bring to VU a valuable experience on EPR of various spin systems, cryoprobeheads and microresonators gained during his postdoctoral fellowship at University College London. During the project, the researcher will grow as a specialist of highly sensitive EPR techniques and their applications, acquire new knowledge of spins in biochemical systems and reach scientific maturity.

Original text from CORDIS.

Participants

  • VILNIAUS UNIVERSITETAS · VilniusCoordinatorLithuania
  • EIDGENOESSISCHE TECHNISCHE HOCHSCHULE ZUERICH · ZuerichSwitzerland

Links

Data: CORDIS, © European Union