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Adjustable coupling and in situ variable frequency electron paramagnetic resonance probe with loop-gap resonators for spectroscopy up to X-band.
Joshi, G; Kubasek, J; Nikolov, I; Sheehan, B; Costa, T A; Allão Cassaro, R A; Friedman, Jonathan R.
Affiliation
  • Joshi G; Department of Physics and Astronomy, Amherst College, Amherst, Massachusetts 01002, USA.
  • Kubasek J; Department of Physics and Astronomy, Amherst College, Amherst, Massachusetts 01002, USA.
  • Nikolov I; Department of Physics and Astronomy, Amherst College, Amherst, Massachusetts 01002, USA.
  • Sheehan B; Department of Physics and Astronomy, Amherst College, Amherst, Massachusetts 01002, USA.
  • Costa TA; Instituto de Química, Universidade Federal do Rio de Janeiro, Rio de Janeiro, RJ 21941-909, Brazil.
  • Allão Cassaro RA; Instituto de Química, Universidade Federal do Rio de Janeiro, Rio de Janeiro, RJ 21941-909, Brazil.
  • Friedman JR; Department of Physics and Astronomy, Amherst College, Amherst, Massachusetts 01002, USA.
Rev Sci Instrum ; 91(2): 023104, 2020 Feb 01.
Article in En | MEDLINE | ID: mdl-32113449
ABSTRACT
In standard electron paramagnetic resonance (EPR) spectroscopy, the frequency of an experiment is set and the spectrum is acquired using the magnetic field as the independent variable. There are cases in which it is desirable instead to fix the field and tune the frequency such as when studying avoided level crossings. We have designed and tested an adjustable frequency and variable coupling EPR probe with loop-gap resonators (LGRs) that works at a temperature as low as 1.8 K. The frequency is tuned by adjusting the height of a dielectric piece of sapphire inserted into the gap of an LGR; coupling of the microwave antenna is varied with the height of the antenna above the LGR. Both coupling antenna and dielectric are located within the cryogenic sample chamber, but their motion is controlled with external micrometers located outside the cryostat. The frequency of the LGR (∼4 GHz) can be adjusted by more than 1 GHz (>25%). To cover a wide range of frequencies, different LGRs can be designed to cover frequencies up to X-band. We demonstrate the operation of our probe by mapping out avoided crossings for the Ni4 molecular nanomagnet to determine the tunnel splittings with high precision.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Rev Sci Instrum Year: 2020 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Rev Sci Instrum Year: 2020 Document type: Article Affiliation country: