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or hazardous environments where calibration is infeasible, intrinsic thermometer accuracy is crucial. Our Compact Blackbody Radiation Atomic Sensor (CoBRAS) is based on measuring fluorescence ratios of optically
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NIST only participates in the February and August reviews. Rydberg atoms offer a unique way to realize the Kelvin, which will substantially improve the reliability and accuracy of radiometry, thermometry, remote sensing, RF communications, and frequency standards. In particular, Rydberg states...
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, modulators, and photodetectors — with trapped-ion and neutral-atom systems to realize a new generation of quantum sensors with reduced size, weight, and power consumption (SWaP). Such fully integrated, compact
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on the precession of atomic spins in a alkali atom vapor cell have recently reached sensitivities comparable to the best superconducting magneti sensors. In addition, they can be made compact and low-power through
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The combination of laser-cooled atoms and precision spectroscopy enables highly precise instruments and sensors that are also fundamentally accurate. Our group specializes in designing these systems to be compact
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databases, and proven record of accomplishment using data informatics. Reference Orloff ND, et al: A Compact Variable-Temperature Broadband Series-Resistor Calibration, IEEE Transactions on Microwave Theory
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opportunities are available in developing integrated nanophotonic architectures and devices for realizing compact, efficient, accurate and dynamic quantum AMO systems-on-a-chip. By creating a set of scalable
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of cryogenics that are user-friendly, compact, and power efficient. As part of the cryogenic detector development effort, NIST also develops the requisite cryogenic systems, which include both cryocoolers and
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. These materials systems may have far-reaching applications, extending from neuromorphic computing to compact multiple-input multiple-output antennas. By achieving the aims of this project, this Associate will
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, and light-matter interactions. This research opportunity is focused on developing compact, integrated cavity optomechanical devices that push the state of the art in terms of sensitivity and accuracy