Search alternatives:
point decrease » point increase (Expand Search)
nn decrease » _ decrease (Expand Search), gy decreased (Expand Search), b1 decreased (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
point decrease » point increase (Expand Search)
nn decrease » _ decrease (Expand Search), gy decreased (Expand Search), b1 decreased (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
-
31481
Synthetic Control of Pt···Pt Separation and Photophysics of Binuclear Platinum Complexes
Published 2005“…A new series of luminescent μ-pyrazolate-bridged cyclometalated platinum binuclear complexes having the formula <i>C</i><sup>∧</sup><i>N</i>Pt(μ-<i>pz</i><i>‘</i>)<sub>2</sub>Pt<i>C</i><sup>∧</sup><i>N</i> (<i>C</i><sup>∧</sup><i>N</i> = 2-(2,4-difluorophenyl)pyridyl, <i>pz</i><i>‘</i> = pyrazolate for <b>1</b>, 3,5-dimethylpyrazolate for <b>2</b>, 3-methyl-5-<i>tert</i>-butylpyrazolate for <b>3</b>, and 3,5-bis(<i>tert</i>-butyl)pyrazolate for <b>4</b>) have been synthesized and characterized. …”
-
31482
Synthetic Control of Pt···Pt Separation and Photophysics of Binuclear Platinum Complexes
Published 2005“…A new series of luminescent μ-pyrazolate-bridged cyclometalated platinum binuclear complexes having the formula <i>C</i><sup>∧</sup><i>N</i>Pt(μ-<i>pz</i><i>‘</i>)<sub>2</sub>Pt<i>C</i><sup>∧</sup><i>N</i> (<i>C</i><sup>∧</sup><i>N</i> = 2-(2,4-difluorophenyl)pyridyl, <i>pz</i><i>‘</i> = pyrazolate for <b>1</b>, 3,5-dimethylpyrazolate for <b>2</b>, 3-methyl-5-<i>tert</i>-butylpyrazolate for <b>3</b>, and 3,5-bis(<i>tert</i>-butyl)pyrazolate for <b>4</b>) have been synthesized and characterized. …”
-
31483
Synthetic Control of Pt···Pt Separation and Photophysics of Binuclear Platinum Complexes
Published 2005“…A new series of luminescent μ-pyrazolate-bridged cyclometalated platinum binuclear complexes having the formula <i>C</i><sup>∧</sup><i>N</i>Pt(μ-<i>pz</i><i>‘</i>)<sub>2</sub>Pt<i>C</i><sup>∧</sup><i>N</i> (<i>C</i><sup>∧</sup><i>N</i> = 2-(2,4-difluorophenyl)pyridyl, <i>pz</i><i>‘</i> = pyrazolate for <b>1</b>, 3,5-dimethylpyrazolate for <b>2</b>, 3-methyl-5-<i>tert</i>-butylpyrazolate for <b>3</b>, and 3,5-bis(<i>tert</i>-butyl)pyrazolate for <b>4</b>) have been synthesized and characterized. …”
-
31484
-
31485
-
31486
-
31487
-
31488
Simulated demonstration of apparent clustering arising from over-counting individual labeled molecules with a finite effective PSF.
Published 2012“…Here the over counting ratio (OCR) is 3, meaning each labeled molecule is counted on average 3 times. …”
-
31489
-
31490
-
31491
Coalescence-Induced Self-Propulsion of Droplets on Superomniphobic Surfaces
Published 2017“…Within the visco-capillary regime, decreasing the droplet radius <i>R</i><sub>0</sub> results in a more rapid decrease in the nondimensional jumping velocity <i>V</i><sub>j</sub><sup>*</sup> compared to increasing the viscosity μ. …”
-
31492
Coalescence-Induced Self-Propulsion of Droplets on Superomniphobic Surfaces
Published 2017“…Within the visco-capillary regime, decreasing the droplet radius <i>R</i><sub>0</sub> results in a more rapid decrease in the nondimensional jumping velocity <i>V</i><sub>j</sub><sup>*</sup> compared to increasing the viscosity μ. …”
-
31493
Coalescence-Induced Self-Propulsion of Droplets on Superomniphobic Surfaces
Published 2017“…Within the visco-capillary regime, decreasing the droplet radius <i>R</i><sub>0</sub> results in a more rapid decrease in the nondimensional jumping velocity <i>V</i><sub>j</sub><sup>*</sup> compared to increasing the viscosity μ. …”
-
31494
Coalescence-Induced Self-Propulsion of Droplets on Superomniphobic Surfaces
Published 2017“…Within the visco-capillary regime, decreasing the droplet radius <i>R</i><sub>0</sub> results in a more rapid decrease in the nondimensional jumping velocity <i>V</i><sub>j</sub><sup>*</sup> compared to increasing the viscosity μ. …”
-
31495
-
31496
-
31497
Sustainable Sea of Internet of Things: Wind Energy Harvesting System for Unmanned Surface Vehicles
Published 2024“…A prototype is manufactured, and the test result shows that it can charge a 2200 μF supercapacitor to 6.2 V within 120 s, which indicates that it has a great potential to achieve the self-powered low-power sensors. …”
-
31498
Sustainable Sea of Internet of Things: Wind Energy Harvesting System for Unmanned Surface Vehicles
Published 2024“…A prototype is manufactured, and the test result shows that it can charge a 2200 μF supercapacitor to 6.2 V within 120 s, which indicates that it has a great potential to achieve the self-powered low-power sensors. …”
-
31499
Sustainable Sea of Internet of Things: Wind Energy Harvesting System for Unmanned Surface Vehicles
Published 2024“…A prototype is manufactured, and the test result shows that it can charge a 2200 μF supercapacitor to 6.2 V within 120 s, which indicates that it has a great potential to achieve the self-powered low-power sensors. …”
-
31500
Sustainable Sea of Internet of Things: Wind Energy Harvesting System for Unmanned Surface Vehicles
Published 2024“…A prototype is manufactured, and the test result shows that it can charge a 2200 μF supercapacitor to 6.2 V within 120 s, which indicates that it has a great potential to achieve the self-powered low-power sensors. …”