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Because OLED panels are just 0.07 of an inch thick and give off virtually no heat when lighted, one day architects will no longer need to leave space in ceilings for deep lighting fixtures, just as homeowners do not need a deep armoire for their television now that flat-panel TVs are common.
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Utilization of NIR excitation light not only allows for deeper light penetration and reduced photodamage effects, but also offers lower autofluorescence, reduced light scattering, and phototoxicity.
The "optical transparency window" of the biological tissues in the NIR range (750 1100 nm) not only allows for deeper light penetration, but also results in lower autofluorescence and reduced light scattering.
The applications of such "templates" for deep UV light emitting diodes (UV LED) and surface acoustic wave sensors (SAW) are discussed.
We propose a transparent conductive oxide electrode scheme of gallium oxide nanoparticle mixed with a single-walled carbon nanotube (Ga2O3 NP/SWNT) layer for deep ultraviolet light-emitting diodes using spin and dipping methods.
The P values are 0.42 for deep versus light stains, 0.91 for high versus low cell densities, and 0.96 for stimulated versus nonstimulated cells.
Especially, AlN crystals are promising for deep-ultraviolet light-emitting diodes and laser diodes because of the wide direct-transition bandgap (6.2 eV) [7, 8].
We report barrier-height and well-width dependence of room-temperature photoluminescence from AlGaN-based quantum well structures for deep-UV light emitting device applications.
Because of their ability to convert long-wavelength near-infrared excitation radiation into shorter-wavelength emissions, these nanomaterials are able to produce assets of low imaging background, large anti-Stokes shift, as well as high optical penetration depth of light for deep tissue optical imaging or light-activated drug release and therapy.
There was a tiny carrel for deep concentration, a light-filled room for reading, a lounge for socializing.
The use of NIR light for deep tissue measurements stems from the exploitation of a spectral region (650-950 nm) wherein light absorption of the biological tissue is relatively low.
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