Results 241 to 250 of about 61,834 (304)
Near-infrared-to-deep-blue photon upconversion engineered from PbS quantum dots and perylene derivatives. [PDF]
Li H +5 more
europepmc +1 more source
WGM microprobe device for high-sensitivity ultrasound detection and vibration spectrum measurement. [PDF]
Sun J +5 more
europepmc +1 more source
Fine-Tuning Directional Message Passing Neural Networks: Predicting Properties of Conjugated Organic Polymers with High Accuracy. [PDF]
Koskin IP, Petrosyan LS, Kazantsev MS.
europepmc +1 more source
Photonic Structure-Integrated Two-Dimensional Material Optoelectronics [PDF]
The rapid development and unique properties of two-dimensional (2D) materials, such as graphene, phosphorene and transition metal dichalcogenides enable them to become intriguing candidates for future optoelectronic applications.
Tianjiao Wang, Yaqiong Xu
exaly +2 more sources
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Accounts of Chemical Research, 2020
How does one tell the difference between one molecule or mixture of molecules from another? Chemical sensing seeks to probe physical or chemical properties of molecular or ionic species (i.e., analytes) and transform that information into a useful and distinguishable output. The olfactory system of animals is the prototype of chemical sensing. Even for
Zheng Li, Kenneth S. Suslick
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How does one tell the difference between one molecule or mixture of molecules from another? Chemical sensing seeks to probe physical or chemical properties of molecular or ionic species (i.e., analytes) and transform that information into a useful and distinguishable output. The olfactory system of animals is the prototype of chemical sensing. Even for
Zheng Li, Kenneth S. Suslick
openaire +2 more sources
Proceedings of the International Conference and Workshop on Emerging Trends in Technology, 2010
OPTOELECTRONIC devices either produce light or use light in their operation. An optoelectronic device includes an optoelectronic component, the optoelectronic component having an active region and at least one first conductive path on a first substrate, wherein the first conductive path is electrically connected to the active region.
Nikhil Jain +3 more
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OPTOELECTRONIC devices either produce light or use light in their operation. An optoelectronic device includes an optoelectronic component, the optoelectronic component having an active region and at least one first conductive path on a first substrate, wherein the first conductive path is electrically connected to the active region.
Nikhil Jain +3 more
openaire +5 more sources
Annual Meeting Optical Society of America, 1988
Optoelectronic devices and measurement techniques now operate at speeds ranging from picoseconds to hundreds of femtoseconds, have a dynamic range that extends from microvolts to kilovolts, are virtually jitter-free, and can make measurements in a wide variety of circuits, devices, and materials without requiring direct electrical contacts to the ...
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Optoelectronic devices and measurement techniques now operate at speeds ranging from picoseconds to hundreds of femtoseconds, have a dynamic range that extends from microvolts to kilovolts, are virtually jitter-free, and can make measurements in a wide variety of circuits, devices, and materials without requiring direct electrical contacts to the ...
openaire +1 more source
Metamaterials, Metadevices, and Metasystems 2017, 2017
Plasmonic metasurfaces offer a new paradigm for the design of optoelectronic devices. We discuss nanoscale device ideas that exploit the optical field enhancement and confinement provided by such metasurfaces to achieve performance benefits.
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Plasmonic metasurfaces offer a new paradigm for the design of optoelectronic devices. We discuss nanoscale device ideas that exploit the optical field enhancement and confinement provided by such metasurfaces to achieve performance benefits.
openaire +1 more source
Science
Metasurfaces have introduced new opportunities in photonic design by offering unprecedented, nanoscale control over optical wavefronts. These artificially structured layers have largely been used to passively manipulate the flow of light by controlling its phase, amplitude, and polarization.
Son Tung Ha +5 more
openaire +2 more sources
Metasurfaces have introduced new opportunities in photonic design by offering unprecedented, nanoscale control over optical wavefronts. These artificially structured layers have largely been used to passively manipulate the flow of light by controlling its phase, amplitude, and polarization.
Son Tung Ha +5 more
openaire +2 more sources

