Towards reliable electrical measurements of superconducting devices inside a transmission electron microscope

Fuente: arXiv
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Autori principali: Thomsen, Joachim Dahl, Faley, Michael I., Vas, Joseph Vimal, Clausen, Alexander, Denneulin, Thibaud, Biscette, Dominik, Sutter, Denys, Lu, Peng-Han, Dunin-Borkowski, Rafal E.
Natura: Preprint
Pubblicazione: 2026
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author Thomsen, Joachim Dahl
Faley, Michael I.
Vas, Joseph Vimal
Clausen, Alexander
Denneulin, Thibaud
Biscette, Dominik
Sutter, Denys
Lu, Peng-Han
Dunin-Borkowski, Rafal E.
author_facet Thomsen, Joachim Dahl
Faley, Michael I.
Vas, Joseph Vimal
Clausen, Alexander
Denneulin, Thibaud
Biscette, Dominik
Sutter, Denys
Lu, Peng-Han
Dunin-Borkowski, Rafal E.
contents Correlating structure with electronic functionality is central to the engineering of quantum materials and devices whose properties depend sensitively on disorder. Transmission electron microscopy (TEM) offers high spatial resolution together with access to structural, electronic, and magnetic degrees of freedom. However, operando electrical transport measurements on functional quantum devices remain rare, particularly at liquid helium temperature. Here, we demonstrate electrical transport measurements of niobium nitride (NbN) devices inside a TEM using a continuous-flow liquid-helium-cooled sample holder. By optimizing a thermal radiation shield to limit radiation from the nearby pole pieces of the objective lens, we achieve an estimated base sample temperature of 8-9 K, as inferred from the superconducting transition temperatures of our devices. We find that both electron beam illumination and objective lens excitation perturb the superconducting state. In addition, we evaluate the imaging capabilities and stability of the sample holder at low temperature by imaging the magnetic domain structure of the van der Waals ferromagnet CrBr$_3$. Finally, we perform calculations that underscore the importance of cryo-shielding for minimizing thermal radiation onto the device. This capability enables correlative low-temperature TEM studies, in which structural, spectroscopic, and electrical transport data can be obtained from the same device, thereby providing a platform for probing the microscopic origins of quantum phenomena.
format Preprint
id arxiv_https___arxiv_org_abs_2601_13298
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Towards reliable electrical measurements of superconducting devices inside a transmission electron microscope
Thomsen, Joachim Dahl
Faley, Michael I.
Vas, Joseph Vimal
Clausen, Alexander
Denneulin, Thibaud
Biscette, Dominik
Sutter, Denys
Lu, Peng-Han
Dunin-Borkowski, Rafal E.
Superconductivity
Correlating structure with electronic functionality is central to the engineering of quantum materials and devices whose properties depend sensitively on disorder. Transmission electron microscopy (TEM) offers high spatial resolution together with access to structural, electronic, and magnetic degrees of freedom. However, operando electrical transport measurements on functional quantum devices remain rare, particularly at liquid helium temperature. Here, we demonstrate electrical transport measurements of niobium nitride (NbN) devices inside a TEM using a continuous-flow liquid-helium-cooled sample holder. By optimizing a thermal radiation shield to limit radiation from the nearby pole pieces of the objective lens, we achieve an estimated base sample temperature of 8-9 K, as inferred from the superconducting transition temperatures of our devices. We find that both electron beam illumination and objective lens excitation perturb the superconducting state. In addition, we evaluate the imaging capabilities and stability of the sample holder at low temperature by imaging the magnetic domain structure of the van der Waals ferromagnet CrBr$_3$. Finally, we perform calculations that underscore the importance of cryo-shielding for minimizing thermal radiation onto the device. This capability enables correlative low-temperature TEM studies, in which structural, spectroscopic, and electrical transport data can be obtained from the same device, thereby providing a platform for probing the microscopic origins of quantum phenomena.
title Towards reliable electrical measurements of superconducting devices inside a transmission electron microscope
topic Superconductivity
url https://arxiv.org/abs/2601.13298