Process Systems, Reaction Engineering, and Molecular Thermodynamics — U.S. National Science Foundation funding opportunity
U.S. National Science Foundation · Federal agency

Process Systems, Reaction Engineering, and Molecular Thermodynamics

TheProcess Systems, Reaction Engineering and Molecular Thermodynamicsprogram is part of the Chemical Process Systems cluster, which also includes: 1) theCatalysisprogram; 2) theElectrochemical Systemsprogram; and 3) theI...

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Deadline Fixed Location Alabama Type grant Level Federal Open posted Jun 6, 2025
✦ AI Summary
  • Who can apply: Federal-level applicants (see eligibility for details).
  • Funding amount: total funding pool ~$4,900,000.
  • Issued by: U.S. National Science Foundation.
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The “key facts” mode pulls structured fields directly from the official source posting (amount, deadline, eligibility tags). The AI mode adds a short plain-English narrative on top, generated from the same source. Always verify with the agency before applying.

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Deadline
Fixed
Total pool
$4.9M

About this opportunity

TheProcess Systems, Reaction Engineering and Molecular Thermodynamicsprogram is part of the Chemical Process Systems cluster, which also includes: 1) theCatalysisprogram; 2) theElectrochemical Systemsprogram; and 3) theInterfacial Engineeringprogram. The goal of theProcess Systems, Reaction Engineering and Molecular Thermodynamicsprogram is to advance fundamental engineering research on the rates and mechanisms of chemical reactions, systems engineering, and molecular thermodynamics as they relate to the design and optimization of chemical reactors and the production of specialized materials that have important impacts on society. The program supports the development of advanced optimization and control algorithms for chemical processes, molecular and multi-scale modeling of complex chemical systems, fundamental studies on molecular thermodynamics, and the integration of these methods and concepts into the design of complex chemical manufacturing processes. Sustainable chemical manufacturing is supported by focusing on the development of energy-efficientchemical processes and environmentally-friendly chemical products through concurrent chemical product/process design methods.Sustainability is also enhanced by research that promotes the electrification of the chemical process industries over current thermally-activated processes. Proposals should focus on: ·Chemical reaction engineering: This area encompasses the interaction of transport phenomena and kinetics in reactive systems and the use of this knowledge in the design of chemical reactors.Focus areas include novel reactor designs, such as catalytic and membrane vapor and atomic layer deposition systems; studies of reactions in supercritical fluids, novel reaction activation techniques such as atmospheric pressure microwaves; design of multifunctional and intensified systems such as chemical-factory/lab-on-a-chip concepts, nanoparticle surface functionalization; and biomass conversion to fuels and chemicals. The program also supports new approaches that enable the design of modular chemical manufacturing systems, such as distributed hydrogen production processes with emphasis on finding alternatives to natural gas reforming. ·Process control: This area encompasses the development of algorithms for control of process systems and individual process units.High-priority research topics include process intensification, modular process systems, smart manufacturing, large-scale carbon dioxide capture and conversion, computational tools enabling advanced chemical manufacturing, real-time optimization and control of large-scale chemical systems with quantitative sustainability metrics, machine learning, and optimization of enterprise-wide processes involving real-time control to create resilient supply chains. ·Reactive polymer processing: Program scope in this area is limited to research that integrates synthesis and processing to engineer specific nanoscale structures and compositions to tune the macroscopic scale properties of polymers, such as their ability to biodegrade or to be recycled. The focus is on reactive processes that address these environmental concerns while producing tailor-made macromolecular materials. ·Molecular thermodynamics: This area focuses on fundamental research that combines principles of classical thermodynamics, statistical mechanics, and atomistic-scale simulations to improve chemical processing and to facilitate synthesis of novel functional materials such as colloids. Topics include fundamental studies on self- and directed-assembly of nanoscale-level patterned polymer films, machine-learning methods to predict structure-property relationships, large-ensemble molecular dynamics simulations, simulation of peptide self-assembly and protein interactions, and behavior of multiphase and reactive systems under nanoscale confinement.

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  • District of Columbia

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Citation details

Source systemgrants.gov
Source ID359381
PostedJun 6, 2025

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