Showing 721 - 740 results of 27,013 for search '(( 50 ((we decrease) OR (a decrease)) ) OR ( 5 ((teer decrease) OR (nn decrease)) ))', query time: 1.02s Refine Results
  1. 721
  2. 722
  3. 723

    Interfacial Engineering with a Nanoparticle-Decorated Porous Carbon Structure on β″-Alumina Solid-State Electrolytes for Molten Sodium Batteries by Minyuan M. Li (12616823)

    Published 2022
    “…We present a novel anode interface modification on the β″-alumina solid-state electrolyte that improves the wetting behavior of molten sodium in battery applications. …”
  4. 724

    Interfacial Engineering with a Nanoparticle-Decorated Porous Carbon Structure on β″-Alumina Solid-State Electrolytes for Molten Sodium Batteries by Minyuan M. Li (12616823)

    Published 2022
    “…We present a novel anode interface modification on the β″-alumina solid-state electrolyte that improves the wetting behavior of molten sodium in battery applications. …”
  5. 725

    Interfacial Engineering with a Nanoparticle-Decorated Porous Carbon Structure on β″-Alumina Solid-State Electrolytes for Molten Sodium Batteries by Minyuan M. Li (12616823)

    Published 2022
    “…We present a novel anode interface modification on the β″-alumina solid-state electrolyte that improves the wetting behavior of molten sodium in battery applications. …”
  6. 726
  7. 727

    Lysine 50 of Tat regulates expression of C5, CRLF2, APBA1, and BDNF genes. by Loreto Carvallo (4167607)

    Published 2017
    “…<p>THP-1Tat-Flag and THP-1Tat K50ATat-Flag cell lines (generated from independent experiments described in <a href="http://www.plosone.org/article/info:doi/10.1371/journal.pone.0179882#pone.0179882.g005" target="_blank">Fig 5</a>) were differentiated to macrophages with PMA for 24 and 48 hours. …”
  8. 728
  9. 729
  10. 730
  11. 731
  12. 732
  13. 733
  14. 734
  15. 735

    Integration of Segmented Ion Fractionation and Differential Ion Mobility on a Q‑Exactive Hybrid Quadrupole Orbitrap Mass Spectrometer by Sibylle Pfammatter (3226209)

    Published 2021
    “…However, the FAIMS interface has not been available on older generation Orbitrap mass spectrometers such as the Q-Exactive. Here, we report the integration of the FAIMS Pro device with embedded electrical and gas connections to a Q-Exactive HF mass spectrometer. …”
  16. 736

    Integration of Segmented Ion Fractionation and Differential Ion Mobility on a Q‑Exactive Hybrid Quadrupole Orbitrap Mass Spectrometer by Sibylle Pfammatter (3226209)

    Published 2021
    “…However, the FAIMS interface has not been available on older generation Orbitrap mass spectrometers such as the Q-Exactive. Here, we report the integration of the FAIMS Pro device with embedded electrical and gas connections to a Q-Exactive HF mass spectrometer. …”
  17. 737

    Integration of Segmented Ion Fractionation and Differential Ion Mobility on a Q‑Exactive Hybrid Quadrupole Orbitrap Mass Spectrometer by Sibylle Pfammatter (3226209)

    Published 2021
    “…However, the FAIMS interface has not been available on older generation Orbitrap mass spectrometers such as the Q-Exactive. Here, we report the integration of the FAIMS Pro device with embedded electrical and gas connections to a Q-Exactive HF mass spectrometer. …”
  18. 738

    Integration of Segmented Ion Fractionation and Differential Ion Mobility on a Q‑Exactive Hybrid Quadrupole Orbitrap Mass Spectrometer by Sibylle Pfammatter (3226209)

    Published 2021
    “…However, the FAIMS interface has not been available on older generation Orbitrap mass spectrometers such as the Q-Exactive. Here, we report the integration of the FAIMS Pro device with embedded electrical and gas connections to a Q-Exactive HF mass spectrometer. …”
  19. 739
  20. 740

    Dimerization of [Fe<sup>III</sup>(bpy)<sub>3</sub>]<sup>3+</sup> in Aqueous Solutions: Elucidating a Mechanism Based on Historical Proposals, Electrochemical Data, and Computationa... by Nicolas E. Holubowitch (9254254)

    Published 2022
    “…Despite these favorable characteristics, its oxidized Fe­(III) form undergoes dimerization to form μ-O-[Fe<sup>III</sup>(bpy)<sub>2</sub>(H<sub>2</sub>O)]<sub>2</sub><sup>4+</sup>, leading to a dramatic ∼0.7 V decrease during battery discharge. …”