Results 201 to 210 of about 53,139 (255)

Mid-infrared group IV nanowire laser. [PDF]

open access: yesSci Adv
Kim Y   +12 more
europepmc   +1 more source

Mid-infrared wavelength multiplexers on an InP platform. [PDF]

open access: yesNanophotonics
Zhang K   +4 more
europepmc   +1 more source

Mid-infrared light resonance-enhanced proton conductivity in ceramics. [PDF]

open access: yesNat Commun
Li H   +6 more
europepmc   +1 more source

On-chip dual quantum walk comb in the mid-infrared

open access: yes
Montesinos-Ballester M   +4 more
europepmc   +1 more source

Hybrid Asymmetric Nanostructures for the Mid-Infrared

2020 International Conference on UK-China Emerging Technologies (UCET), 2020
In comparison with electromagnetic radiation at shorter wavelengths, infrared radiation is non-destructive for many organic molecules. Previous research has established the resonant behaviour of various nanostructures designed to operate in the mid-infrared region and observe the resonant behaviour of organic molecules, with applications in areas such ...
Mbomson, Ifeoma G.   +3 more
openaire   +2 more sources

Mid-Infrared Photonics

Optical Fiber Communication Conference, 2015
Group IV and III–V semiconductor photonic devices are prime candidates for photonic and opto-electronic (OEIC) applications in the 1.8 to 5.0 µm infrared wavelength range. Si-based active photonics in the GeSn/SiGeSn heterosystem (LDs, PDs, LEDs, amplifiers, EOMs) offers the Si CMOS “foundry advantage” for high-volume low-cost OEIC manufacture. Two MIR
openaire   +1 more source

Mid-Infrared Fiber Lasers

2007
The current state of the art in mid-infrared fiber lasers is reviewed in this chapter. The relevant fiber-host materials such as silicates, fluorides, chalcogenides, and ceramics, the fiber, pump, and resonator geometries, and the spectroscopic properties of rare-earth ions are introduced. Lasers at transitions ranging from 1.9 to 4 μm occurring in the
Pollnau, Markus, Jackson, Stuart D.
openaire   +1 more source

Fractionated Mid-Infrared Resurfacing

Seminars in Cutaneous Medicine and Surgery, 2008
Fractional resurfacing devices thermally alter microscopic treatment columns in the skin, leaving intervening areas between the columns untouched. Because only a fraction of the skin is being modified, untreated areas are able to rapidly repopulate the treatment columns to greatly reduce recovery time and adverse events. Mid-infrared fractional systems
openaire   +2 more sources

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