Scherschligt Julia, Fedchak James A, Ahmed Zeeshan, Barker Daniel S, Douglass Kevin, Eckel Stephen, Hanson Edward, Hendricks Jay, Klimov Nikolai, Purdy Thomas, Ricker Jacob, Singh Robinjeet, Stone Jack
National Institute of Standards and Technology, 100 Bureau Dr. Gaithersburg, MD 20899.
J Vac Sci Technol A. 2018;36. doi: 10.1116/1.5033568.
The measurement science in realizing and disseminating the unit for pressure in the International System of Units (SI), the pascal (Pa), has been the subject of much interest at NIST. Modern optical-based techniques for pascal metrology have been investigated, including multi-photon ionization and cavity ringdown spectroscopy. Work is ongoing to recast the pascal in terms of quantum properties and fundamental constants and in so doing, make vacuum metrology consistent with the global trend toward quantum-based metrology. NIST has ongoing projects that interrogate the index of refraction of a gas using an optical cavity for low vacuum, and count background particles in high vacuum to extreme high vacuum using trapped laser-cooled atoms.
在实现和传播国际单位制(SI)中压力单位帕斯卡(Pa)方面的测量科学,一直是美国国家标准与技术研究院(NIST)关注的焦点。人们对基于光学的现代帕斯卡计量技术进行了研究,包括多光子电离和光腔衰荡光谱学。目前正在开展工作,根据量子特性和基本常数重新定义帕斯卡,从而使真空计量与基于量子的计量全球趋势保持一致。NIST正在进行一些项目,利用光学腔测量低真空下气体的折射率,并使用捕获的激光冷却原子对高真空至极高真空下的背景粒子进行计数。