Showing 2,381 - 2,400 results of 18,006 for search 'significantly ((((less decrease) OR (((teer decrease) OR (nn decrease))))) OR (a decrease))', query time: 0.66s Refine Results
  1. 2381

    Sequence of <i>DpAP2</i> promoter. by Lingru Ruan (18995544)

    Published 2024
    “…It was speculated that MeJA significantly decreased expression of <i>DpAP2</i> gene, then the decreasing <i>DpAP2</i> expression significantly inhibited expression of some key enzyme genes such as <i>PSY</i>, <i>PDS</i> and <i>GGPS</i> in carotenoid biosynthesis pathway. …”
  2. 2382

    Predicted <i>cis</i>-acting elements in <i>DpAP2</i> promoter. by Lingru Ruan (18995544)

    Published 2024
    “…It was speculated that MeJA significantly decreased expression of <i>DpAP2</i> gene, then the decreasing <i>DpAP2</i> expression significantly inhibited expression of some key enzyme genes such as <i>PSY</i>, <i>PDS</i> and <i>GGPS</i> in carotenoid biosynthesis pathway. …”
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  7. 2387
  8. 2388
  9. 2389
  10. 2390
  11. 2391
  12. 2392
  13. 2393

    Charge-Transfer-Driven Electrical Conductivity in Single Crystals of Assembled Triphenylamine Bis-urea Macrocycles by Fahidat A. Gbadamosi (22123930)

    Published 2025
    “…Achieving tunable electrical conductivity in organic materials is a key challenge for the development of next-generation semiconductors. …”
  14. 2394

    Charge-Transfer-Driven Electrical Conductivity in Single Crystals of Assembled Triphenylamine Bis-urea Macrocycles by Fahidat A. Gbadamosi (22123930)

    Published 2025
    “…Achieving tunable electrical conductivity in organic materials is a key challenge for the development of next-generation semiconductors. …”
  15. 2395

    Charge-Transfer-Driven Electrical Conductivity in Single Crystals of Assembled Triphenylamine Bis-urea Macrocycles by Fahidat A. Gbadamosi (22123930)

    Published 2025
    “…Achieving tunable electrical conductivity in organic materials is a key challenge for the development of next-generation semiconductors. …”
  16. 2396

    Charge-Transfer-Driven Electrical Conductivity in Single Crystals of Assembled Triphenylamine Bis-urea Macrocycles by Fahidat A. Gbadamosi (22123930)

    Published 2025
    “…Achieving tunable electrical conductivity in organic materials is a key challenge for the development of next-generation semiconductors. …”
  17. 2397

    Charge-Transfer-Driven Electrical Conductivity in Single Crystals of Assembled Triphenylamine Bis-urea Macrocycles by Fahidat A. Gbadamosi (22123930)

    Published 2025
    “…Achieving tunable electrical conductivity in organic materials is a key challenge for the development of next-generation semiconductors. …”
  18. 2398

    Charge-Transfer-Driven Electrical Conductivity in Single Crystals of Assembled Triphenylamine Bis-urea Macrocycles by Fahidat A. Gbadamosi (22123930)

    Published 2025
    “…Achieving tunable electrical conductivity in organic materials is a key challenge for the development of next-generation semiconductors. …”
  19. 2399

    Promotion of CO<sub>2</sub> Reactivity by Organic Acid on Aerosol Surfaces by Hao Li (31608)

    Published 2025
    “…The results show that the reactions of CO<sub>2</sub>-NH<sub>3</sub>/amines predominantly occur at the interface of water droplets since CO<sub>2</sub>/NH<sub>3</sub>/amines show a surface tendency. At the surface with formic acid (HCOOH), the barrier of C–N compound formation from the CO<sub>2</sub>-NH<sub>3</sub> reaction catalyzed by HCOOH is calculated to be 6.8 kcal/mol, which can be easily overcome at ambient temperature and is significantly decreased in comparison to both gas phase and surface without organic acid. …”
  20. 2400

    Promotion of CO<sub>2</sub> Reactivity by Organic Acid on Aerosol Surfaces by Hao Li (31608)

    Published 2025
    “…The results show that the reactions of CO<sub>2</sub>-NH<sub>3</sub>/amines predominantly occur at the interface of water droplets since CO<sub>2</sub>/NH<sub>3</sub>/amines show a surface tendency. At the surface with formic acid (HCOOH), the barrier of C–N compound formation from the CO<sub>2</sub>-NH<sub>3</sub> reaction catalyzed by HCOOH is calculated to be 6.8 kcal/mol, which can be easily overcome at ambient temperature and is significantly decreased in comparison to both gas phase and surface without organic acid. …”