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Find similar grantsAtomic, Molecular, and Optical Sciences is sponsored by U.S. Department of Energy (DOE) Office of Science (SC). This program supports fundamental, hypothesis-driven research in ultrafast chemical sciences, including basic experimental and theoretical research aimed at understanding the structural and dynamical properties of atomic and molecular systems.
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CSGB Atomic, Molecular, and Opti... | U.S. DOE Office of Science (SC) Atomic, Molecular, and Optical Sciences The DOE AMOS program accepts and reviews proposals continuously under the annual Funding Opportunity Announcement entitled, “Continuation of Solicitation for the Office of Science Financial Assistance Program” available on the Open FOA page. Preproposals are strongly encouraged for all new proposals.
The AMOS program is focused on fundamental, hypothesis-driven research in ultrafast chemical sciences. The program supports basic experimental and theoretical research aimed at understanding the structural and dynamical properties of atomic and molecular systems. The research targets fundamental interactions of photons and electrons with atomic and molecular systems to characterize and control their behavior.
The program aims to develop accurate quantum mechanical descriptions of dynamical processes such as charge migration and transfer, chemical bond breaking and forming, and interactions in strong fields, where electron-electron and electron-nuclei correlations are important.
Topics of interest include the development and use of novel, ultrafast optical probes of matter; the interactions of atoms and molecules with intense electromagnetic fields; and control of quantum processes in molecular systems.
The AMOS activity will continue to support science that advances DOE mission priorities, including research that contributes to the development of a fundamental understanding of excitation dynamics and charge transfer relevant to the initial steps in clean solar energy conversion.
The AMOS program will continue to have a prominent role at BES facilities in understanding and controlling the interaction of intense, ultrafast x-ray pulses with matter. Key targets for greater investment include attosecond science, ultrafast x-ray science, and ultrafast electron diffraction from molecular systems.
Although the program supports compelling research in atomic systems, an emphasis will be placed on research that elucidates ultrafast dynamics in molecular systems of increasing complexity. Closely related experimental and theoretical efforts are encouraged. Projects involving technical development of sources or instrumentation must include a well-integrated scientific research focus.
The program emphasizes ultrafast, strong-field, short-wavelength science, and studies of correlated dynamics in molecules. Examples include ultrafast x-ray science at the Linac Coherent Light Source (LCLS-II) and the use of high-harmonic generation or its variants for probing ultrafast dynamics.
Applications of these light sources include ultrafast imaging of chemical reactions, diffraction and harmonic generation from aligned molecules, inner-shell photoionization of atoms and molecules, and probing and controlling non-adiabatic dynamics.
The program encourages research exploiting next-generation capabilities of x-ray free electron lasers and modern data science approaches to provide new insights to electronic and molecular dynamics occurring on the attosecond-to-femtosecond time scale and to reveal key intermediate states in chemical reactions.
Coherent control of nonlinear optical processes and tailoring of quantum mechanical wave functions with lasers will continue to be of interest, particularly in molecular systems. The program will continue to support the use of experimental and theoretical tools to advance the understanding of low-energy electron-molecule interactions in the gas and condensed phases.
To obtain more information about this research area, please see the proceedings of our Principal Investigators' Meetings . To better understand how this research area fits within the Department of Energy's Office of Science, please refer to the Basic Energy Science's organization chart and budget request . For more information about this research area, please contact Dr. Thomas Settersten .
Accessing Dynamic Electrochemical Interfaces A new technique reveals ultrafast processes in electrode-electrolyte interfaces under operating conditions. Interactions Between X-Rays and Matter Provide Insights into How Electrons Behave in Molecules By measuring the delay between when a molecule absorbs a photon from an X-ray and emits an electron, scientists gained insight into how electrons interact.
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According to the current listing, eligibility includes: Not specified in the provided snippets, but typically academic and national laboratory researchers for DOE Office of Science programs. Confirm the full requirements in the official notice before applying.
Atomic, Molecular, and Optical Sciences is funded by U.S. Department of Energy (DOE) Office of Science (SC). Verify program details on the funder's official page before applying.
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MGPV Travel Grant is sponsored by Geological Society of America (GSA), Mineralogy, Geochemistry, Petrology, Volcanology Division. MGPV Travel grants support student travel to the annual GSA meeting. Applications are restricted to active graduate or undergraduate students who are the presenting authors of an accepted abstract at the annual GSA meeting.
Research Opportunities in Space and Earth Science (ROSES) - 2025: A.4 Rapid Response and Novel Research in Earth Science is sponsored by National Aeronautics and Space Administration (NASA) Science Mission Directorate (SMD). This omnibus research funding opportunity includes various program elements, with rolling submissions for Earth Science research through August 2026. Proposers to Earth Science using the NASA Center for Climate Simulation high-end computing facility must include specific budget details.
The Trump administration committed $5B and 278 projects across 15+ agencies to the Genesis Mission. Here's the structure — and how to position for the next wave.
Read articleOn July 22, 2026, the White House announced more than $5 billion in federal commitments for the Genesis Mission — the Department of Energy-led national initiative to fuse AI, exascale computing, and the 17 national labs into a single scientific platform. Nearly 300 projects across all 50 states were selected from a historic Request for Applications, and 15-plus agencies are now attaching funding to a set of National Science and Technology Challenges. Here is what the Genesis Mission is, how the money is structured, and the concrete on-ramps for researchers, universities, and small businesses who were not in the first cohort.
Read articleDOE's FY2026 Office of Science open-call solicitation (DE-FOA-0003600) makes roughly $500 million available across about 500 awards of $50,000 to $5 million — across computing, physics, chemistry, biology, fusion, and isotopes — with a rolling window that stays open through September 30, 2026. Unlike a targeted NOFO, it lets investigators propose almost anything within the agency's mission. Here is how the open call actually works, why it is chronically underused, and how to write into it.
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