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David A. Long

National Institute of Standards and Technology · US
Area of research
Spectroscopy · Atmospheric Science
Research interest
Research interests include Spectroscopy and Laser Applications, Geology and Paleoclimatology Research, Advanced Fiber Laser Technologies, and Geological formations and processes.
h-index
44
citations
14,529
works
315
NIH funding
primary concept
email

Recent publications

Electro-optic frequency comb Doppler-broadening thermometry
Optics Express 2026cited by 0position: contributordoi
Multichannel, ultra-wideband Rydberg electrometry with an optical frequency comb.
2025cited by 0position: contributordoi
Coherently averaged optical frequency comb spectroscopy with a single electro-optic modulator
Optics Letters 2025cited by 0position: contributordoi
Dynamic tuning of soliton microcomb repetition rate without direct cavity actuation
Optics Continuum 2025cited by 0position: contributordoi
Laser injection locking and nanophotonic spectral translation of electro-optic frequency combs
Optica 2025cited by 0position: contributordoi
Low-power, agile electro-optic frequency comb spectrometer for integrated sensors
Optica 2024cited by 16position: contributordoi
Sub-Doppler spectroscopy of quantum systems through nanophotonic spectral translation of electro-optic light
Nature Photonics 2024cited by 8position: contributordoi
High power, frequency agile comb spectroscopy in the mid-infrared enabled by a continuous-wave optical parametric oscillator
Optics Express 2024cited by 5position: contributordoi
Single-modulator, dual comb serrodyne spectroscopy
Optics Letters 2024cited by 4position: contributordoi
Nanosecond time-resolved dual-comb absorption spectroscopy
Nature Photonics 2023cited by 75position: contributordoi
Single-modulator, direct frequency comb spectroscopy via serrodyne modulation
Optics Letters 2023cited by 12position: contributordoi
High accuracy, high dynamic range optomechanical accelerometry enabled by dual comb spectroscopy
APL Photonics 2023cited by 7position: contributordoi
GPU-enabled real-time optical frequency comb spectroscopy and a photonic readout
Optics Letters 2023cited by 6position: contributordoi
Intrinsically accurate sensing with an optomechanical accelerometer
Optics Express 2022cited by 21position: contributordoi
High dynamic range electro-optic dual-comb interrogation of optomechanical sensors
Optics Letters 2022cited by 7position: contributordoi
The effects of advanced spectral line shapes on atmospheric carbon dioxide retrievals
Journal of Quantitative Spectroscopy and Radiative Transfer 2022cited by 3position: contributordoi
The HITRAN2020 molecular spectroscopic database
Journal of Quantitative Spectroscopy and Radiative Transfer 2021cited by 2,307position: middledoi
Broadband thermomechanically limited sensing with an optomechanical accelerometer
Optica 2021cited by 84position: contributordoi
Improvement of the spectroscopic parameters of the air- and self-broadened N<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" altimg="si3.svg"><mml:msub><mml:mrow/><mml:mn>2</mml:mn></mml:msub></mml:math>O and CO lines for the HITRAN2020 database applications
Journal of Quantitative Spectroscopy and Radiative Transfer 2021cited by 25position: contributordoi
Near-infrared cavity ring-down spectroscopy measurements of nitrous oxide in the (4200)←(0000) and (5000)←(0000) bands
Journal of Quantitative Spectroscopy and Radiative Transfer 2021cited by 25position: contributordoi
High accuracy spectroscopic parameters of the 1.27 µm band of O2 measured with comb-referenced, cavity ring-down spectroscopy
Journal of Quantitative Spectroscopy and Radiative Transfer 2021cited by 23position: contributordoi
Electro-optic frequency combs for rapid interrogation in cavity optomechanics
Optics Letters 2021cited by 22position: contributordoi
Molecular transition frequencies of CO2 near 1.6 µm with kHz-level uncertainties
Journal of Quantitative Spectroscopy and Radiative Transfer 2021cited by 21position: contributordoi
Air-broadening in near-infrared carbon dioxide line shapes: Quantifying contributions from O2, N2, and Ar
Journal of Quantitative Spectroscopy and Radiative Transfer 2021cited by 12position: contributordoi
High‐Accuracy Near‐Infrared Carbon Dioxide Intensity Measurements to Support Remote Sensing
Geophysical Research Letters 2020cited by 37position: contributordoi
SI-traceable molecular transition frequency measurements at the 10<sup>−12</sup> relative uncertainty level
Optica 2020cited by 33position: contributordoi
Using a speed-dependent Voigt line shape to retrieve O <sub>2</sub> from Total Carbon Column Observing Network solar spectra to improve measurements of XCO <sub>2</sub>
Atmospheric Measurement Techniques 2019cited by 29position: contributordoi
Twenty-Five-Fold Reduction in Measurement Uncertainty for a Molecular Line Intensity.
2019cited by 19position: contributordoi
Long-term record of Barents Sea Ice Sheet advance to the shelf edge from a 140,000 year record
Quaternary Science Reviews 2016cited by 11position: middledoi

Grants

RII Track-4: NSF: Developing 3D Models of Live-Endothelial Cell Dynamics with Application Appropriate Validation
NSF2327466$231,0322024–2026PIRePORTER
Collaborative Research: Free-drifting Icebergs as Proliferating Dispersion Sites of Iron Enrichment, Organic Carbon Production and Export in the Southern Ocean
NSF0636440$40,1262007–2011PIRePORTER
(EGB) Understanding and Modeling Hydrogeological, Microbiological, and Geochemical Processes that Control Groundwater Redox Zonation
NSF9708487$466,0001997–2002PIRePORTER
SGER: Efficient Extrachromosomal Replication of Exogenous DNA by a Filamentous Fungus
NSF9724999$49,5991997–1998PIRePORTER
Collaborative Research: Interaction of Saline-Formation Water, Near-Surface Ground Water, and Large Lakes
NSF9317244$120,0001994–1997PIRePORTER
Trace Metal Accumulation in Modern Hypersaline Environments:Co-op Research
NSF8611975$55,0401986–1989PIRePORTER

Frequent collaborators

· 25 papers (2020–2026)T. W. LeBrun · 8 papers (2021–2025)Benjamin J. Reschovsky · Colgate University8 papers (2021–2026)Joseph T. Hodges · AIP Publishing LLC7 papers (2020–2025)Jason J. Gorman · 6 papers (2021–2024)Zachary D. Reed · University of Georgia5 papers (2020–2025)S. M. Bresler · 4 papers (2023–2026)E.M. Adkins · George Washington University4 papers (2021–2021)Feng Zhou · Wuhan Institute of Physics and Mathematics4 papers (2021–2023)Kartik Srinivasan · National Institute of Standards and Technology4 papers (2024–2025)K. Han · Purdue University West Lafayette2 papers (2024–2025)Vladimir A. Aksyuk · Alcatel-Lucent Bell Labs2 papers (2024–2025)Adam T. Heiniger · Photonics (United States)2 papers (2023–2024)Alessandro Mozzato · University of Southampton1 papers (2016–2016)Peter J. Talling · University of Birmingham1 papers (2016–2016)James E. Hunt · University of Birmingham1 papers (2016–2016)Millie Watts · University of Southampton1 papers (2016–2016)D. F. Plusquellic · AIP Publishing LLC1 papers (2023–2023)Gregory Moille · Center for Nanoscale Science and Technology1 papers (2025–2025)Adam J. Fleisher · American Chemical Society1 papers (2020–2020)