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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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Enhanced thermal response of 3D-printed bilayer hydrogels via nanoclay incorporation
Nanoclay enhances the actuation of thermally-responsive 3D-printed hydrogel bilayers.
Layer dependent thermal transport properties of one- to three-layer magnetic Fe:MoS2
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Dataset of tensorial optical and transport properties of materials from the Wannier function method
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Thermally Stable Anthracene-Based 2D/3D Heterostructures for Perovskite Solar Cells
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Cost-competitive offshore wind-powered green methanol production for maritime transport decarbonization
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High-power lithium-ion battery characterization dataset for stochastic battery modeling
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Electrifying amine carbon capture with robust redox-tunable acids
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A holistic platform for accelerating sorbent-based carbon capture
Abstract Reducing carbon dioxide (CO 2 ) emissions urgently requires the large-scale deployment of carbon-capture technologies. These technologies must separate CO 2 from various sources and deliver it to different sinks 1,2 . The quest for optimal solutions for specific source–sink pairs is a complex, multi-objective challenge involving multiple stakeholders and depends on social, economic and regional contexts. Currently, research follows a sequential approach: chemists focus on materials design 3 and engineers on optimizing processes 4,5 , which are then operated at a scale that impacts the economy and the environment. Assessing these impacts, such as the greenhouse gas emissions over the plant’s lifetime, is typically one of the final steps 6 . Here we introduce the PrISMa (Process-Informed design of tailor-made Sorbent Materials) platform, which integrates materials, process design, techno-economics and life-cycle assessment. We compare more than 60 case studies capturing CO 2 from various sources in 5 global regions using different technologies. The platform simultaneously informs various stakeholders about the cost-effectiveness of technologies, process configurations and locations, reveals the molecular characteristics of the top-performing sorbents, and provides insights on environmental impacts, co-benefits and trade-offs. By uniting stakeholders at an early research stage, PrISMa accelerates carbon-capture technology development during this critical period as we aim for a net-zero world.
Controlled macroscopic shape evolution of self-growing polymeric materials
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Physics-based prediction of moisture-capture properties of hydrogels
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Energy consumption and IEQ monitoring in two university apartment buildings: Pre-retrofit dataset
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High-entropy solvation chemistry towards affordable and practical Ah-level zinc metal battery
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Designing water resistant high entropy oxide materials
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Transforming CO2 into advanced 3D printed carbon nanocomposites
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