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Division, where we develop instrumentation beyond the state of the art. Our research program offers a supportive, highly-multidisciplinary environment coupled with outstanding experimental resources
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Analytical Metrology for Production and Characterization of Extracellular Vesicles (EVs) as a Drug Delivery System NIST only participates in the February and August reviews. Extracellular vesicles
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Integrated Photonic Interfaces to Free-space Volumes for Miniaturized Atomic and Molecular Optics Systems on a Chip NIST only participates in the February and August reviews. Postdoctoral research
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RAP opportunity at National Institute of Standards and Technology NIST Microfluidics and Lab-on-a-Chip Technologies for Controlled Molecular Self-Assembly, Analytical Biochemistry, and
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RAP opportunity at National Institute of Standards and Technology NIST Development of a Digital Twin Framework for Metal Additive Manufacturing Location Material Measurement Laboratory
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RAP opportunity at National Institute of Standards and Technology NIST Atomic Clocks and Wavelength References on a Chip Location Physical Measurement Laboratory, Time and Frequency Division
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coherence remains a primary obstacle to achieving fault-tolerant quantum computing at a meaningful scale.1 We are examining a variety of constituent materials in superconducting quantum devices to correlate
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, offering a platform to evaluate new technologies for impurity removal, process robustness, and the impact of upstream conditions on the final product attributes. Ultimately, this program aims to integrate
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to the study of biologically important problems. We have developed a novel approach to VR-SFS using ultrafast (< 50 femtosecond) lasers to generate infrared pulses that have a broad spectrum which enables us to
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to perturbations, and heterogeneities at the ≈ 1 nm to ≈ 1000 nm scale. To fulfill these needs NIST is developing a versatile cryogenic (5K), ultrahigh vacuum (UHV) platform for implementing scanning probe