Resistive-Based Micro-Kelvin Temperature Resolution for Ultra-Stable Space Experiments
Abstract
Share and Cite
Roma-Dollase, D.; Gualani, V.; Gohlke, M.; Abich, K.; Morales, J.; Gonzalvez, A.; Martín, V.; Ramos-Castro, J.; Sanjuan, J.; Nofrarias, M. Resistive-Based Micro-Kelvin Temperature Resolution for Ultra-Stable Space Experiments. Sensors 2023, 23, 145. https://doi.org/10.3390/s23010145
Roma-Dollase D, Gualani V, Gohlke M, Abich K, Morales J, Gonzalvez A, Martín V, Ramos-Castro J, Sanjuan J, Nofrarias M. Resistive-Based Micro-Kelvin Temperature Resolution for Ultra-Stable Space Experiments. Sensors. 2023; 23(1):145. https://doi.org/10.3390/s23010145
Chicago/Turabian StyleRoma-Dollase, David, Vivek Gualani, Martin Gohlke, Klaus Abich, Jordan Morales, Alba Gonzalvez, Victor Martín, Juan Ramos-Castro, Josep Sanjuan, and Miquel Nofrarias. 2023. "Resistive-Based Micro-Kelvin Temperature Resolution for Ultra-Stable Space Experiments" Sensors 23, no. 1: 145. https://doi.org/10.3390/s23010145
APA StyleRoma-Dollase, D., Gualani, V., Gohlke, M., Abich, K., Morales, J., Gonzalvez, A., Martín, V., Ramos-Castro, J., Sanjuan, J., & Nofrarias, M. (2023). Resistive-Based Micro-Kelvin Temperature Resolution for Ultra-Stable Space Experiments. Sensors, 23(1), 145. https://doi.org/10.3390/s23010145

