Accurate measurement of the loss rate of cold atoms due to background gas collisions for the quantum-based cold atom vacuum standard

被引:12
作者
Barker, Daniel S. [1 ]
Fedchak, James A. [1 ]
Klos, Jacek [2 ,3 ]
Scherschligt, Julia [1 ]
Sheikh, Abrar A. [1 ]
Tiesinga, Eite [2 ,3 ,4 ]
Eckel, Stephen P. [1 ]
机构
[1] Natl Inst Stand & Technol, Sensor Sci Div, Gaithersburg, MD 20899 USA
[2] Joint Quantum Inst, College Pk, MD 20742 USA
[3] Univ Maryland, Phys Dept, College Pk, MD 20742 USA
[4] Natl Inst Stand & Technol, Quantum Measurement Div, Gaithersburg, MD 20899 USA
来源
AVS QUANTUM SCIENCE | 2023年 / 5卷 / 03期
关键词
PRESSURE; CALIBRATION;
D O I
10.1116/5.0147686
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We present the measurements of thermalized collisional rate coefficients for ultra-cold Li-7 and Rb-87 colliding with room-temperature He, Ne, N-2, Ar, Kr, and Xe. In our experiments, a combined flowmeter and dynamic expansion system, a vacuum metrology standard, is used to set a known number density for the room-temperature background gas in the vicinity of the magnetically trapped Li-7 or Rb-87 clouds. Each collision with a background atom or molecule removes a Li-7 or Rb-87 atom from its trap, and the change in the atom loss rate with background gas density is used to determine the thermalized loss rate coefficients with fractional standard uncertainties better than 1.6% for Li-7 and 2.7% for Rb-87. We find consistency-a degree of equivalence of less than one-between the measurements and recent quantum-scattering calculations of the loss rate coefficients [K & lstrok;os and Tiesinga, J. Chem. Phys. 158, 014308 (2023)], with the exception of the loss rate coefficient for both Li-7 and Rb-87 colliding with Ar. Nevertheless, the agreement between theory and experiment for all other studied systems provides validation that a quantum-based measurement of vacuum pressure using cold atoms also serves as a primary standard for vacuum pressure, which we refer to as the cold-atom vacuum standard.
引用
收藏
页数:13
相关论文
共 37 条
[31]   Refining the cold atom pressure standard [J].
Shen, Pinrui ;
Madison, Kirk W. ;
Booth, James L. .
METROLOGIA, 2021, 58 (02)
[32]   Realization of a universal quantum pressure standard [J].
Shen, Pinrui ;
Madison, Kirk W. ;
Booth, James L. .
METROLOGIA, 2020, 57 (02)
[33]   A Bitter-type electromagnet for complex atomic trapping and manipulation [J].
Siegel, J. L. ;
Barker, D. S. ;
Fedchak, J. A. ;
Scherschligt, J. ;
Eckel, S. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2021, 92 (03)
[34]  
Stoup J., 2011, NCSLI Measure, V6, P66, DOI [10.1080/19315775.2011.11721550, DOI 10.1080/19315775.2011.11721550]
[35]   TRANSMISSION PROBABILITY FOR MOLECULAR GAS-FLOW THROUGH A TUBE [J].
VANESSEN, D ;
HEERENS, WC .
JOURNAL OF VACUUM SCIENCE & TECHNOLOGY, 1976, 13 (06) :1183-1187
[36]   Numerical modeling of collisional dynamics of Sr in an optical dipole trap [J].
Yan, M. ;
Chakraborty, R. ;
Mazurenko, A. ;
Mickelson, P. G. ;
de Escobar, Y. N. Martinez ;
DeSalvo, B. J. ;
Killian, T. C. .
PHYSICAL REVIEW A, 2011, 83 (03)
[37]   Simple, reliable, and nondestructive method for the measurement of vacuum pressure without specialized equipment [J].
Yuan, Jin-Peng ;
Ji, Zhong-Hua ;
Zhao, Yan-Ting ;
Chang, Xue-Fang ;
Xiao, Lian-Tuan ;
Jia, Suo-Tang .
APPLIED OPTICS, 2013, 52 (25) :6195-6200