How cold is the junction of a millikelvin scanning tunnelling microscope?
arXiv:2210.11908 · doi:10.1038/s42005-023-01201-4
Abstract
We employ a scanning tunnelling microscope (STM) cooled to millikelvin temperatures by an adiabatic demagnetization refrigerator (ADR) to perform scanning tunnelling spectroscopy (STS) on an atomically clean surface of Al(100) in a superconducting state using normal-metal and superconducting STM tips. Varying the ADR temperatures between 30 mK and 1.2 K, we show that the temperature of the STM junction is decoupled from the temperature of the surrounding environment . Simulating the STS data with the theory, we determine that K, while the fitting of the superconducting gap spectrum yields the lowest mK.
12 pages, 10 figures
References in corpus (6)
- Zero-energy vortex bound state in the superconducting topological surface state of Fe(Se,Te)
- Harnessing the Quantum Behavior of Spins on Surfaces
- A modular ultra-high vacuum millikelvin scanning tunneling microscope
- Millikelvin scanning tunneling microscope at 20/22 T with a graphite enabled stick-slip approach and an energy resolution below 8eV: Application to conductance quantization at 20 T in single atom point contacts of Al and Au
- A millikelvin scanning tunneling microscope in ultra-high vacuum with adiabatic demagnetization refrigeration
- Extracting the Transport Channel Transmissions in Scanning Tunneling Microscopy using the Superconducting Excess Current
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