Showing 21 - 40 results of 30,822 for search '(( ((a large) OR (via large)) decrease ) OR ((( a greater decrease ) OR ( c large increases ))))', query time: 0.98s Refine Results
  1. 21

    Decreased <i>Bgl-</i>FaNaC expression in the left parietal ganglion following <i>S</i>. <i>mansoni</i> infection. by Laura C. Vicente-Rodríguez (16437803)

    Published 2023
    “…Increased expression of the FMRF-NH<sub>2</sub> peptide agonist (red circles) is hypothesized to reflect a compensatory response to decreased <i>Bgl</i>-FaNaC expression (green receptors). …”
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    High-Temperature Resistance, Lightweight, and Thermally Insulating Silica Aerogel via Doping Hollow Silica Nanoparticles by Mingyang Yang (1405321)

    Published 2025
    “…Traditional solutions to this issue, such as doping with opacifiers or fibers, often increase thermal conductivity and density. To increase the thermal stability of standard aerogels comprising small full-density SiO<sub>2</sub> nanoparticles (SFPs) (typically 2–15 nm in diameter), SiO<sub>2</sub> aerogels were doped with large hollow SiO<sub>2</sub> nanoparticles (LHPs) with diameters of 100–250 nm. …”
  3. 23

    High-Temperature Resistance, Lightweight, and Thermally Insulating Silica Aerogel via Doping Hollow Silica Nanoparticles by Mingyang Yang (1405321)

    Published 2025
    “…Traditional solutions to this issue, such as doping with opacifiers or fibers, often increase thermal conductivity and density. To increase the thermal stability of standard aerogels comprising small full-density SiO<sub>2</sub> nanoparticles (SFPs) (typically 2–15 nm in diameter), SiO<sub>2</sub> aerogels were doped with large hollow SiO<sub>2</sub> nanoparticles (LHPs) with diameters of 100–250 nm. …”
  4. 24

    High-Temperature Resistance, Lightweight, and Thermally Insulating Silica Aerogel via Doping Hollow Silica Nanoparticles by Mingyang Yang (1405321)

    Published 2025
    “…Traditional solutions to this issue, such as doping with opacifiers or fibers, often increase thermal conductivity and density. To increase the thermal stability of standard aerogels comprising small full-density SiO<sub>2</sub> nanoparticles (SFPs) (typically 2–15 nm in diameter), SiO<sub>2</sub> aerogels were doped with large hollow SiO<sub>2</sub> nanoparticles (LHPs) with diameters of 100–250 nm. …”
  5. 25

    High-Temperature Resistance, Lightweight, and Thermally Insulating Silica Aerogel via Doping Hollow Silica Nanoparticles by Mingyang Yang (1405321)

    Published 2025
    “…Traditional solutions to this issue, such as doping with opacifiers or fibers, often increase thermal conductivity and density. To increase the thermal stability of standard aerogels comprising small full-density SiO<sub>2</sub> nanoparticles (SFPs) (typically 2–15 nm in diameter), SiO<sub>2</sub> aerogels were doped with large hollow SiO<sub>2</sub> nanoparticles (LHPs) with diameters of 100–250 nm. …”
  6. 26

    High-Temperature Resistance, Lightweight, and Thermally Insulating Silica Aerogel via Doping Hollow Silica Nanoparticles by Mingyang Yang (1405321)

    Published 2025
    “…Traditional solutions to this issue, such as doping with opacifiers or fibers, often increase thermal conductivity and density. To increase the thermal stability of standard aerogels comprising small full-density SiO<sub>2</sub> nanoparticles (SFPs) (typically 2–15 nm in diameter), SiO<sub>2</sub> aerogels were doped with large hollow SiO<sub>2</sub> nanoparticles (LHPs) with diameters of 100–250 nm. …”
  7. 27

    High-Temperature Resistance, Lightweight, and Thermally Insulating Silica Aerogel via Doping Hollow Silica Nanoparticles by Mingyang Yang (1405321)

    Published 2025
    “…Traditional solutions to this issue, such as doping with opacifiers or fibers, often increase thermal conductivity and density. To increase the thermal stability of standard aerogels comprising small full-density SiO<sub>2</sub> nanoparticles (SFPs) (typically 2–15 nm in diameter), SiO<sub>2</sub> aerogels were doped with large hollow SiO<sub>2</sub> nanoparticles (LHPs) with diameters of 100–250 nm. …”
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    Effects of Shape on Interaction Dynamics of Tetrahedral Nanoplastics and the Cell Membrane by Xin Yong (1500670)

    Published 2023
    “…The rotational diffusion decreases by a greater extent compared to the translational diffusion, deviating from the continuum theory predictions. …”
  14. 34

    Effects of Shape on Interaction Dynamics of Tetrahedral Nanoplastics and the Cell Membrane by Xin Yong (1500670)

    Published 2023
    “…The rotational diffusion decreases by a greater extent compared to the translational diffusion, deviating from the continuum theory predictions. …”
  15. 35

    Effects of Shape on Interaction Dynamics of Tetrahedral Nanoplastics and the Cell Membrane by Xin Yong (1500670)

    Published 2023
    “…The rotational diffusion decreases by a greater extent compared to the translational diffusion, deviating from the continuum theory predictions. …”
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