| Literature DB >> 34884088 |
Angel-Theodor Buruiana1,2, Florinel Sava1, Nicusor Iacob1, Elena Matei1, Amelia Elena Bocirnea1, Melania Onea1,2, Aurelian-Catalin Galca1, Claudia Mihai1, Alin Velea1, Victor Kuncser1.
Abstract
Nanoscale thermometers with high sensitivity are needed in domains which study quantum and classical effects at cryogenic temperatures. Here, we present a micrometer sized and nanometer thick chromium selenide cryogenic temperature sensor capable of measuring a large domain of cryogenic temperatures down to tenths of K. Hexagonal Cr-Se flakes were obtained by a simple physical vapor transport method and investigated using scanning electron microscopy, energy dispersive X-ray spectrometry and X-ray photoelectron spectroscopy measurements. The flakes were transferred onto Au contacts using a dry transfer method and resistivity measurements were performed in a temperature range from 7 K to 300 K. The collected data have been fitted by exponential functions. The excellent fit quality allowed for the further extrapolation of resistivity values down to tenths of K. It has been shown that the logarithmic sensitivity of the sensor computed over a large domain of cryogenic temperature is higher than the sensitivity of thermometers commonly used in industry and research. This study opens the way to produce Cr-Se sensors for classical and quantum cryogenic measurements.Entities:
Keywords: chromium selenide; cryogenics; temperature sensor
Year: 2021 PMID: 34884088 PMCID: PMC8662463 DOI: 10.3390/s21238084
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576