Performance benchmarking of an ultra-low vibration laboratory to host a commercial millikelvin scanning tunnelling microscope
arXiv:2308.00333 · doi:10.1088/1361-6528/acebf7
Abstract
Ultra-low temperature scanning tunnelling microscopy and spectroscopy (STM/STS) achieved by dilution refrigeration can provide unrivalled insight into the local electronic structure of quantum materials and atomic-scale quantum systems. Effective isolation from mechanical vibration and acoustic noise is critical in order to achieve ultimate spatial and energy resolution. Here, we report on the design and performance of an ultra-low vibration (ULV) laboratory hosting a customized but otherwise commercially available 40mK STM. The design of the vibration isolation consists of a T-shaped concrete mass block (55t), suspended by actively controlled pneumatic springs, and placed on a foundation separated from the surrounding building in a "room-within-a-room" design. Vibration levels achieved are meeting the VC-M vibration standard at >3 Hz, reached only in a limited number of laboratories worldwide. Measurement of the STM's junction noise confirms effective vibration isolation on par with custom built STMs in ULV laboratories. In this tailored low-vibration environment, the STM achieves an energy resolution of 43ueV (144 mK), promising for the investigation and control of quantum matter at atomic length scales.
References in corpus (9)
- Scanning tunneling spectroscopy of high-temperature superconductors
- Giant Phonon-induced Conductance in Scanning Tunneling Spectroscopy of Gate-tunable Graphene
- Two energy gaps and Fermi surface 'arcs' in NbSe2
- Evidence of Flat Bands and Correlated States in Buckled Graphene Superlattices
- Probing topological quantum matter with scanning tunnelling microscopy
- Inducing Kondo Screening of Vacancy Magnetic Moments in Graphene with Gating and Local Curvature
- A modular ultra-high vacuum millikelvin scanning tunneling microscope
- Multi-Band Superconductivity in Strongly Hybridized 1T'-WTe/NbSe Heterostructures
- Design and characterization of a low-vibration laboratory with cylindrical inertia block geometry