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Updated: Aug 23, 2025

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Cryogenic probe for low-noise, high-frequency electronic measurements.

E Garcia1, C Bales1, W Patterson2

  • 1Department of Physics, Brown University, Providence, Rhode Island 02912, USA.

The Review of Scientific Instruments
|November 1, 2022
PubMed
Summary

A versatile, low-noise cryogenic probe was developed for diverse scientific measurements. Its modular design enables high-precision experiments across various frequencies, temperatures, and magnetic fields.

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Area of Science:

  • Physics
  • Materials Science
  • Electrical Engineering

Background:

  • Cryogenic probes are essential for sensitive measurements at low temperatures.
  • Existing probes may have limitations in modularity and performance across wide parameter ranges.
  • Advanced measurement techniques require probes with low noise and minimal signal loss.

Purpose of the Study:

  • To present the design and performance of a novel low-noise, modular cryogenic probe.
  • To demonstrate its applicability to a wide range of measurement conditions.
  • To highlight features enabling high-precision and low-sensitivity measurements.

Main Methods:

  • Detailed design of a modular cryogenic probe.
  • Characterization of transmission and reflection loss.

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  • Testing with shot noise measurements of magnetic tunnel junctions.
  • Evaluation of suitability for nuclear magnetic resonance.
  • Main Results:

    • The probe exhibits low noise and minimal transmission/reflection loss.
    • Its modularity allows easy exchange of sample holders and amplifiers.
    • Demonstrated effectiveness in measuring shot noise in magnetic tunnel junctions.
    • Design features support applicability to techniques like nuclear magnetic resonance.

    Conclusions:

    • The developed cryogenic probe offers a versatile platform for advanced scientific measurements.
    • Its modularity and low-loss characteristics enhance suitability for high-precision experiments.
    • The design facilitates broader applications in condensed matter physics and quantum information science.