Patent classifications
G01J2003/1217
IMAGE-BASED COMPONENT MEASUREMENT SYSTEM USING LIGHT EMITTING DEVICE THAT OUTPUTS VARIABLE WAVELENGTH AND METHOD THEREOF, AND METHOD OF PLANT CULTIVATION METHOD USING THE SAME
The present disclosure relates to an image-based component measurement system using a light unit that outputs a variable wavelength, a method thereof, and a plant cultivation method using the same. More specifically, the present disclosure provides an image-based component measurement system using a light unit that outputs a variable wavelength, a method thereof, and a plant cultivation method using the same, which collect and analyze data based on image information acquired by emitting light having a specific wavelength using a sheet on which a plurality of quantum dots which can be controlled to have a wavelength necessary for measuring a configuration component of a target object are arranged. Thus, the system and methods are able to measure component content contained in the target object using a low cost and miniaturized device, and cultivate a plant by adjusting content of nutrients of the plant using the measured component content.
Optical filter and optical spectrometer including the same
An optical spectrometer may include an optical filter including a plurality of filter layers formed on a base substrate. The filter layers may include a perovskite material and at least two filter layers among the plurality of filter layers may include perovskite materials having different composition ratios from each other. The filter layers may show respective band-gap characteristics in different optical wavelength ranges from each other, in an optical absorption spectrum and/or an optical transmission spectrum.
On-chip spectrometer employing pixel-count-modulated spectral channels and method of manufacturing the same
An array of sensor pixels is formed on a substrate, and a signal processing unit is connected to the array of sensor pixels. The signal processing unit includes multiple spectral channels that are defined by a respective transmission curve of each optical filter of at least one associated sensor pixel. Each of the sensor pixels includes a stack of a respective photodetector and a respective optical filter. Each spectral channel receives an output signal from one or more sensor pixels including an optical filter having the same transmission curve. At least one spectral channel has a greater number of sensor pixels than another spectral channel among the multiple spectral channels. The different number of pixels for the spectral channels can be employed to compensate for variations of sensor efficiency as a function of wavelength. Adjustment to sensor gain can be minimized through use of different number of pixels for different spectral channels.
Liquid-crystal selectable bandpass filter
An optical device may include an optical filter array comprising an array of bandpass filters, and a liquid-crystal (LC) panel comprising an array of LC regions. An aspect ratio of the LC panel may match an aspect ratio of the optical filter array such that each LC region, of the array of LC regions, is associated with a respective bandpass filter of the array of bandpass filters A LC region, of the array of LC regions, may selectively transmit light that is incident on the LC region.
SENSOR DEVICE AND ELECTRONIC DEVICE
The present disclosure relates to a sensor device and an electronic device capable of providing a better spectral characteristic. A sensor device is provided with a semiconductor substrate on which a photodiode is formed, a filter included in a multilayer structure stacked on a light-receiving surface side of the semiconductor substrate, and a moth-eye structure arranged on an outermost surface above the filter. Then, a surface plasmon resonance filter or a Fabry-Perot resonator filter is used as the filter. The present technology may be applied to, for example, a spectral device which performs multi-spectroscopy or hyperspectral spectroscopy.
Raman signal measuring method and apparatus, and biometric information analyzing apparatus including the Raman signal measuring apparatus
Provided are a Raman signal measuring method and apparatus which use a difference in a time scale between Raman scattered light and fluorescence. Thus, after exciting light is incident upon a target object, light scattered from the target object may be detected before the target object generates fluorescence in response to the exciting light. As a result, a Raman signal in which background fluorescence is reduced may be obtained.
Smartphone lens system attachment
An imaging system for a smartphone includes a housing configured to rigidly attach to a handheld smartphone device. The system further includes an arm extending from the housing, wherein the arm is configured to be adjustable such that the arm is movable toward and away from the housing. Additionally, the system includes a sample mounting portion attached to the arm, the mounting portion having a retaining device, wherein the retaining device is configured to secure a target sample, the mounting portion configured to direct an image of the target sample to a first camera in the handheld smartphone device.
Filter assembly for providing adjustable spectral capabilities in a broadband inspection system
A system which may be used to increase the number of available spectrum bands in an inspection system is provided. The system may include an illumination source configured to emit broadband illumination. The system may also include a filter assembly including two or more filter units. The two or more filter units may include two or more filters with one or more varying filtering characteristics. The system may also include two or more motors configured to selectively actuate selected filters of the filter units into the beam of illumination. Using the system, the number of available spectrum bands to be used in an inspection system may be increased.
OPTICAL FILTER AND SPECTROMETER
An optical assembly is disclosed including two laterally variable bandpass optical filters stacked at a fixed distance from each other, so that the upstream filter functions as a spatial filter for the downstream filter. The lateral displacement may cause a suppression of the oblique beam when transmission passbands at impinging locations of the oblique beam onto the upstream and downstream filters do not overlap. A photodetector array may be disposed downstream of the downstream filter. The optical assembly may be coupled via a variety of optical conduits or optical fibers for spectroscopic measurements of a flowing sample.
Compact high density rotary optical filter wheel assemblies
Filter wheel assemblies with a single actuation point to control positioning of front and rear optical filter elements simultaneously and to provide high channel density with a plurality of selectable optical filter pairs. A filter wheel assembly may include a plurality of optical filter element pairs arranged around a common axis, wherein each of the plurality of optical filter element pairs includes a first filter element and a complementary filter element, wherein each first filter element and each complementary filter element has a surface having a normal component directed toward an inner portion of the filter wheel assembly.