Search alternatives:
ms decrease » _ decrease (Expand Search), nn decrease (Expand Search), use decreased (Expand Search)
we decrease » _ decrease (Expand Search), nn decrease (Expand Search), teer decrease (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
50 ms » 500 ms (Expand Search), 50 mg (Expand Search), 50 mm (Expand Search)
ms decrease » _ decrease (Expand Search), nn decrease (Expand Search), use decreased (Expand Search)
we decrease » _ decrease (Expand Search), nn decrease (Expand Search), teer decrease (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
50 ms » 500 ms (Expand Search), 50 mg (Expand Search), 50 mm (Expand Search)
-
12341
-
12342
-
12343
-
12344
-
12345
-
12346
-
12347
-
12348
Crystallography of Chevrel Phases, MMo<sub>6</sub>T<sub>8</sub> (M = Cd, Na, Mn, and Zn, T = S, Se) and Their Cation Mobility
Published 2009“…In spite of extensive studies of these materials, the origin of their high ionic mobility remained unclear. In a previous paper we presented for the first time a proper classification of the very complex transport behavior of different cations in the Mo<sub>6</sub>T<sub>8</sub> hosts: (i) apparent immobility of the large M cations such as Pb<sup>2+</sup>, Sn<sup>2+</sup>, Ag<sup>+</sup> in the ternary phases, MMo<sub>6</sub>T<sub>8</sub>; (ii) coupled M+M′ diffusion in the quaternary phases, M<sub><i>x</i></sub>M′<sub><i>y</i></sub>Mo<sub>6</sub>T<sub>8</sub>, where both large and small cations can assist; (iii) cation trapping in the Mg−Mo<sub>6</sub>S<sub>8</sub>, Cd−Mo<sub>6</sub>S<sub>8</sub>, and Na−Mo<sub>6</sub>T<sub>8</sub> systems; (iv) a combination of low- and high-rate diffusion kinetics at the first and last intercalation stages, respectively, for the Cu−Mo<sub>6</sub>S<sub>8</sub>, Mn−Mo<sub>6</sub>S<sub>8</sub>, and Cd−Mo<sub>6</sub>Se<sub>8</sub> systems, and (v) a fast ionic transport for small cations such as Ni<sup>2+</sup>, Zn<sup>2+</sup>, and Li<sup>+</sup>. …”
-
12349
-
12350
β<sub>12</sub>-Borophene/Graphene Heterostructure as a High-Performance Anode Material for Li-Ion Batteries
Published 2024“…Impressively, the calculated specific capacity reached 907 mAh/g, outperforming other 2D materials and heterostructures. The combination of a graphene layer not only ensures dynamical stability but also provides the adsorption energy of lithiumon the β<sub>12</sub>-borophene layer, simultaneously decreasing the diffusion barrier energy in comparison with the β<sub>12</sub>-borophene monolayer. …”
-
12351
-
12352
-
12353
-
12354
Supplementary Material for: Inter-α-Trypsin Inhibitor Heavy Chain 5 (ITIH5) Is a Natural Stabilizer of Hyaluronan That Modulates Biological Processes in the Skin
Published 2020“…<b><i>Results:</i></b> Using murine skin models, ITIH5 knockdown fibroblasts, and a reactive oxygen species (ROS)-mediated HA degradation assay, we proved that ITIH5 binds to HA, thereby acting as a stabilizer of HA. …”
-
12355
Effects of conivaptan on brain water content (BWC), blood-brain-barrier (BBB) disruption, plasma and urine sodium and osmolality.
Published 2015“…Following MCAO, Evans Blue (EB) extravasation index (I/C) was increased in vehicle treated mice, and reduced in conivaptan treated mice, naïve, n = 5, vehicle, n = 8, Conivaptan 0.2 mg, n = 8. (C, D) Conivaptan treatment of 0.2 mg resulted in an elevation of plasma sodium and osmolality, and decreased urine sodium and osmolality due to aquaresis. …”
-
12356
-
12357
-
12358
-
12359
-
12360