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Find similar grantsQuantum Information Science Research Centers is sponsored by National Aeronautics and Space Administration (NASA). Supports interdisciplinary research centers focused on advancing quantum information science and technology.
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Quantum Information Systems for Networking and Sensing - NASA International Space Station NASA to Cover 34th SpaceX Resupply Mission Space Station Departure NASA Marches Toward Artemis III Mission in 2027, Names Crew Members What’s Up: June 2026 Skywatching Tips from NASA Upcoming Launches and Landings Communicating with Missions James Webb Space Telescope International Space Station Earth Science Researchers Asteroids, Comets & Meteors The Search for Life in the Universe Astrophysics & Space Science Biological & Physical Sciences Human Space Travel Research Flight Research Innovation Technology Transfer & Spinoffs Manufacturing and Materials For Colleges and Universities Requests for Exhibits, Artifacts, Speakers & Flyovers Upcoming Launches & Landings NASA Brand & Usage Guidelines Hubble Sees Swarm of Galaxies NASA’s X-59 Reaches Speed, Altitude for Future Quiet Supersonic Flights NASA Marches Toward Artemis III Mission in 2027, Names Crew Members Growing Stem Cells in Space to Improve Cancer and Disease Treatments Studying Pneumonia in Space for Heart Health on Earth World Cup Fever in Guadalajara NASA, USGS Scientists Go Rock Hounding in California’s High Desert Air Pollution’s Daily Pulse Over the Northeast Total Solar Eclipse on August 12, 2026 NASA’s Artemis II Moon Mission Research Continues on Earth What’s Up: June 2026 Skywatching Tips from NASA Hubble Sees Swarm of Galaxies Eyes on Exoplanets Tutorial NASA’s Chandra Discovers Possible Supernova Remnant in Galactic Center Hubble Sees Swarm of Galaxies Eyes on Exoplanets Tutorial NASA Robotic Tech Demo Will Advance Prototype Gamma-Ray Detectors NASA’s X-59 Aircraft Flies Supersonic for First Time Aeronautics Flight Log Experience NASA Robotic Tech Demo Will Advance Prototype Gamma-Ray Detectors NASA Equips Astronauts, Industry with Robotic Intelligence NASA Concludes Antenna Mishap Investigation, Releases Report Space Out This Summer with Variety of NASA STEM Activities How NASA Science and Artemis Are Shaping the 2026 FIFA World Cup NASA Award Boosts Space Technology Research Capabilities NASA Marches Toward Artemis III Mission in 2027, Names Crew Members La NASA anuncia la cobertura de la misión lunar Artemis II Agenda diaria de la misión a la Luna de Artemis II de la NASA La NASA refuerza Artemis: añade una misión y perfecciona su arquitectura general Quantum Information Systems for Networking and Sensing NASA is developing quantum technologies for light-based communication and remote sensing, focusing on free-space transmission through space or Earth’s atmosphere.
NASA postdoctoral researcher Adam Fallon aligning optics for a setup that converts laser light from one wavelength to another. Wavelength conversion techniques allow researchers to use a single laser for multiple laboratory applications.
The Quantum Information Science (QIS) team at NASA’s Glenn Research Center in Cleveland, Ohio, researches and develops quantum technologies to generate, manipulate, transmit, and detect light for communication and remote sensing applications. The team focuses on free-space transmission, through space or Earth’s atmosphere, as the medium for long-distance quantum networking and entanglement distribution.
At the core of Glenn’s quantum work are quantum communications technology development, metrology, and testbeds that connect quantum processors, sensors, and advanced communication systems. The goal is to mature quantum technologies so hardware is ready for use in robust aerospace environments.
Through experimentation, the team gathers physical device parameters, which are combined with network models to evaluate how matured technologies perform in targeted architectures. NASA Glenn also works to reduce the size, weight, and power (SWaP) of quantum devices while maintaining performance. Area of Expertise Researcher Email Quantum Metrology, Nonlinear Optics John Lekki john.
d. lekki@nasa. gov Quantum Metrology, Nonlinear Optics Evan Katz evan.
j. katz@nasa. gov Quantum Metrology, Nonlinear Optics, Cold Atom Systems Adam Fallon adam.
fallon@nasa. gov Quantum Theory, Link Budgets/Models Yousef Chahine yousef. k.
chahine@nasa. gov Single Photon Detectors, Nonlinear Optics, Magnetometers Brian Vyhnalek brian. e.
vyhnalek@nasa. gov Single Photon Detectors, Nonlinear Optics Nathaniel Wilson nathaniel. c.
wilson@nasa. gov Why Quantum? Why Now?
NASA Celebrates World Quantum Day Video about exciting work in quantum technologies and quantum’s impact in everyday life. NASA’s First-Ever Quantum Memory Made at Glenn Research Center NASA’s Glenn Research Center in Cleveland is playing a major role in the development of a cutting-edge technology: NASA’s first-ever quantum memory.
NASA Glenn facilities where this research is conducted: Aerospace Communications Facility Brings together over 80 researchers to one cutting-edge building, with 25 research laboratories, a large RF-shielded high bay space, and both rooftop and ground-based antennae fields. Learn More about Aerospace Communications Facility A view of NASA Glenn’s new Aerospace Communications Facility in the evening.
Credits: NASA/Sara Lowthian-Hanna NASA postdoctoral researcher Adam Fallon aligning optics for a setup that converts laser light from one wavelength to another. Wavelength conversion techniques allow researchers to use a single laser for multiple laboratory applications. NASA Quantum Information Scientist Evan Katz aligning optics for a Hong Ou Mandel measurement.
The setup provides a measurement of two-photon interference from a single quantum source. Photon interference is a key process for multiple quantum communication applications. Hong Ou Mandel optical setup.
The setup provides a measurement of two-photon interference from a single quantum source. Photon interference is a key process for multiple quantum communication applications. The foreground of this image shows an optical setup for converting laser light from one wavelength to another.
Wavelength conversion techniques allow researchers to use a single laser for multiple applications. In the background, the optical setup for a Hong Ou Mandel measurement is shown. The setup provides a measurement of two-photon interference from two separate quantum sources.
Photon interference is a key process for multiple quantum communication applications. Franson interferometer optical setup. This technique is used to verify whether a time-energy entangled source is truly producing pairs of entangled photons.
NASA Quantum Information Scientist Ian Nemitz aligning optics within a Franson Interferometer. This technique is used to verify whether a time-energy entangled source is truly producing pairs of entangled photons. NASA Quantum Information Scientist Brian Vyhnalek places integrated photonic chips beneath a microscope objective for analysis of quantum-metrology-applicable devices.
NASA Quantum Information Scientist Brian Vyhnalek analyzes quantum-metrology-applicable devices that were built on an integrated photonics platform. Integrated photonic chips beneath a microscope objective, for analysis of quantum-metrology-applicable devices. Integrated photonic chips beneath a microscope objective, for analysis of quantum-metrology-applicable devices.
NASA Quantum Information Scientist Daniel Hart aligning optics for a setup that converts laser light from one wavelength to another. Wavelength conversion techniques allow researchers to use a single laser for multiple laboratory applications. The optical setup for a Hong Ou Mandel measurement is shown.
The setup provides a measurement of two-photon interference from two separate quantum sources. Photon interference is a key process for multiple quantum communication applications. Between two optical objectives sits an integrated photonics chip that contains waveguide entanglement sources.
Red laser light is used to highlight the chip. NASA Glenn Research Center quantum information scientists within NASA’s Quantum Metrology Laboratory, in support of the Space Communications and Navigation program. Back left to right: Brian Vyhnalek, Evan Katz, Adam Fallon, Ian Nemitz.
Front left to right: Daniel Hart, Yousef Chahine. NASA Glenn Research Center quantum information scientists within NASA’s Quantum Metrology Laboratory, in support of the Space Communications and Navigation program. The scientists are wearing laser safety goggles.
Back left to right: Brian Vyhnalek, Evan Katz, Adam Fallon, Ian Nemitz. Front left to right: Daniel Hart, Yousef Chahine. Publication Title Author(s) Source Type Year Few-Mode Fiber Coupled Superconducting Nanowire Single-Photon Detectors for Photon Efficient Optical Communications Vyhnalek, Brian E.
and Tedder, Sarah A. and Katz, Evan J. and Nappier, Jennifer M.
SPIE Photonics West; February 02, 2019 – February 07, 2019; San Francisco, CA; United States Conference Paper 2019 Bell Inequality Experiment for a High Brightness Time-Energy Entangled Source Nemitz, Ian R. and Dietz, Jonathan and Katz, Evan J. and Vyhnalek, Brian and Child, Benjamin and Floyd, Bertram M.
and Lekki, John D. SPIE Photonics West; February 05, 2019 – February 07, 2019; San Francisco, CA; United States. Conference Paper 2019 Bell Inequality Experiment for a High Brightness Time-Energy Entangled Source Nemitz, Ian R.
and Dietz, Jonathan and Katz, Evan J. and Vyhnalek, Brian E. and Child, Benjamin and Floyd, Bertram and Lekki, John D.
SPIE Photonics West; February 02, 2019 – February 07, 2019; San Francisco, CA; United States Poster 2019 Discover More Topics From NASA Communications research at NASA's Glenn Research Center Airborne Laser Communication Testbed NASA research platform enables high-speed, secure, jam-resistant data links, requiring line of sight, with over fifty hours of successful aircraft testing.
NASA is upgrading optical communications for faster data transfer with lower mass and power, meeting the high-capacity needs of future space missions.
According to the current listing, eligibility includes: Universities, national laboratories, and other research institutions. Confirm the full requirements in the official notice before applying.
Quantum Information Science Research Centers is funded by National Aeronautics and Space Administration (NASA). Verify program details on the funder's official page before applying.
Yes — this listing is flagged as national in scope, so applicants across the U.S. may apply, subject to the sponsor's other eligibility criteria.
Applications go through the funder's official portal — the Apply Now link on this page goes there directly.
ROSES 2025: A.4 Rapid Response and Novel Research in Earth Science is sponsored by National Aeronautics and Space Administration (NASA). This program element within the Research Opportunities in Space and Earth Sciences (ROSES) supports rapid response and novel research in Earth Science, which can include AI applications to make complex science data easier to find and to develop data-driven predictive modeling an…
AI for Science (ROSES 2025: B. 16 Heliophysics Artificial Intelligence/Machine Learning-Ready Data) is sponsored by National Aeronautics and Space Administration (NASA). NASA's AI for Science initiatives focus on developing data-driven predictive modeling and simulation to forecast phenomena such as weather, space weather, and cosmic events, and making complex science data easier to find.
NASA published an RFI on September 12, 2026 seeking states willing to host and sponsor the new United States Space Academy, with responses due October 26 at 6 p.m. EDT through SAM.gov. Only a governor or a governor's designee may submit, and only once per state. The timeline demands groundbreaking by 2027, 300 students in temporary facilities in 2028, and a permanent campus by 2031. Here is what that structure actually means for universities, economic development agencies, and contractors in the states that compete.
Read articleNNH26ZDA016C funds about five multi-institutional lunar research teams at up to $1.8 million per year for five years. Step-1 closes September 29, 2026, Step-2 on December 4, review is dual-anonymous, and up to $180,000 a year is carved out for public engagement before any science gets funded.
Read articleROSES-2025 has been amended 69 times and now runs to December 31, 2026 — but the 'no due date' and flexible program elements that carried the community through the gap close August 31. Two rules changed mid-cycle that most proposers have not read: a generative-AI citation requirement and a $0.09-per-SBU charge for NASA high-end computing that must appear in your Earth Science budget.
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