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Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
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A predictive continuum framework for concrete subjected to high-velocity impact loading
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Studies for Voltage Maintenance in Microgrid Development in the La Margarita Community in Salinas, Puerto Rico
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De Novo Design of High‐Affinity Miniprotein Binders Targeting Francisella Tularensis Virulence Factor
Abstract Francisella tularensis poses considerable public health risk due to its high infectivity and potential for bioterrorism. Francisella‐like lipoprotein (Flpp3), a key virulence factor unique to Francisella, plays critical roles in infection and immune evasion, making it a promising target for therapeutic development. However, the lack of well‐defined binding pockets and structural information on native interactions has hindered structure‐guided ligand discovery against Flpp3. Here, we used a combination of physics‐based and deep‐learning methods to design high‐affinity miniprotein binders targeting two distinct sites on Flpp3. We identified four binders for site I with binding affinities ranging between 24–110 nM. For the second site, an initial binder showed a dissociation constant ( K D ) of 81 nM, and subsequent site saturation mutagenesis yielded variants with sub‐nanomolar affinities. Circular dichroism confirmed the topology of designed miniproteins. The X‐ray crystal structure of Flpp3 in complex with a site I binder is nearly identical to the design model (Cα root‐mean‐square deviation (RMSD): 0.9 Å). These designed miniproteins provide research tools to explore the roles of Flpp3 in tularemia and should enable the development of new therapeutic candidates.
Coupling chemistry and biology for the synthesis of advanced bioproducts
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A Membraneless Electrochemically Mediated Amine Regeneration for Carbon Capture
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Heat Batteries for Deep Decarbonization of the Beverage Industry
There has been significant progress towards the Go/No-Go Review Criteria for both sub-projects to prepare the project to enter Budget Period 2 in July.
A machine learning based classifier for topological quantum materials
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Validation of Ultrasonic Techniques for Reinforcing Bar Stress Measurement in Concrete Structures Considering Temperature Effect
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A framework for context specific material model calibration
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A Physics-Constrained Bayesian neural network for battery remaining useful life prediction
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Surrogate Process Development for Coated Particle Burnable Absorber Fuel Pellets
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Multi-Fidelity Dynamic Line Rating Fusion for System Load Margin Enhancement with Large-Scale Offshore Wind Generations
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Finite Element Model for Air Permeability of Cracked Reinforced Concrete Plates
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On-chip terahertz emission from Floquet-Bloch states [Invited]
Floquet engineering uses time-periodic electromagnetic fields to modify the electronic properties of quantum materials via the creation of Floquet-Bloch states. These photon-dressed states inherit features from both the material and the driving field, enabling the exploration and control of quantum phenomena in light-matter hybrid systems. In non-centrosymmetric materials, shift currents can arise from the quantum geometric properties of electronic wavefunctions. However, shift currents from Floquet-Bloch states remain experimentally unexplored. Here, we employ an on-chip optoelectronic circuit to detect intrinsic terahertz emission from Floquet-Bloch states in T d -WTe 2 under intense optical driving. We observe strong edge-localized terahertz emission that scales linearly with the driving field, consistent with the theoretical prediction for shift currents generated by Floquet-Bloch states. The results advance our understanding of strongly driven quantum materials and provide insights for developing efficient, bias-free terahertz sources for future optoelectronic technologies.
Synergistic K+/Li+ Electrolyte Engineering Boosts the Faradaic Kinetics of (AlMnFeNiTi)3O4 Spinel High-Entropy Oxide for High-Performance Supercapacitors
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Evaluating the Performance of Commercial Silver Sorbents for Volatile Radioiodine Capture
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