Patent classifications
B01L2400/0406
METHOD OF MANUFACTURING MICROFLUIDIC DEVICE USING TRANSFER FILM AND LAB-ON-PAPER PLATFORM MANUFACTURED BY MANUFACTURING METHOD THEREOF
The present disclosure relates to a method of manufacturing a microfluidic device, which may precisely form a channel having a desired shape within one substrate using a wax regardless of a shape of a hydrophilic porous substrate, and more specifically, to a method of manufacturing a microfluidic device in which a microchannel is formed by a wax within one hydrophilic porous substrate, the method including: an operation of stacking and then heat-treating a transfer film on which a mirror image of a wax pattern is formed to form a microchannel and the substrate.
CARTRIDGE AND BIOLOGICAL DETECTION SYSTEM
A cartridge is for a detection of a sample or a first component, wherein the sample includes the first component and a second component. The cartridge includes a first injection chamber, a second injection chamber, a separation chamber, a collection chamber and a first detection chamber. The first injection chamber and the second injection chamber are adapted for injecting the sample or the first component. The separation chamber is connected to the first injection chamber, and the sample injected from the first injection chamber is adapted to be separated into the first component and the second component in the separation chamber. The collection chamber is connected to the separation chamber and the second injection chamber. The first detection chamber is connected to the collection chamber. A biological detection system is further provided.
Hand-held applicator
A hand-held applicator (10) for collecting, mixing, diluting and discharging a sample liquid, comprising a main body (20) having an inlet-aperture (24), an outlet-aperture (26) and a chamber (22) for storing a liquid solution, wherein the chamber is connected to the inlet-aperture and the outlet-aperture, a lid (12) for covering the inlet-aperture and a tube (40), moveably supported in the inlet-aperture when the lid is covering the upper portion of the main body, wherein the tube (40) is moveable between a predetermined position outside the chamber and a position, in which the tube is at least partly located in the chamber.
MICROFLUIDIC ARRANGEMENT FOR CAPILLARY DRIVEN FLUIDIC CONNECTION
The present inventive concept relates to a microfluidic arrangement (1) for capillary driven fluidic connection between capillary flow channels (8, 16). The microfluidic arrangement (1) comprises: a first microfluidic system (4) comprising a first surface (5), and a first capillary flow channel (8), wherein the first capillary flow channel (8) has an elongation in a first plane, and the first surface comprises an outlet opening (9) in a plane different from the first plane, the outlet opening defining an outlet area (35) in the first surface and being adapted to allow fluidic communication with the first capillary flow channel thereby forming a flow outlet (12) of the first capillary flow channel, and a second microfluidic system (6) comprising a second surface (7) and a second capillary flow channel (16), wherein the second capillary flow channel (16) has an elongation in a second plane parallel to the first plane, and a portion of the second surface (7) comprises an inlet opening (13) in a plane different from the second plane, the inlet opening defining an inlet area (33) in the second surface and being adapted to allow fluidic communication with the second capillary flow channel thereby forming a flow inlet (20) of the second capillary flow channel, wherein the first microfluidic system (4) and the second microfluidic system (6) are arranged with the first and the second surfaces in contact such that the flow outlet (12) and the flow inlet (20) are interfaced, thereby allowing capillary driven fluidic connection between the first and the second capillary flow channels (8, 16), wherein the outlet area (35) overlaps at least a portion of the inlet area (33), said at least a portion of the inlet area (33) overlapped by the outlet area (35) being smaller than the outlet area (35).
CUVETTE FOR ANALYSIS OF LIQUIDS
A cuvette for analysis of liquids, including a first cuvette portion and a second cuvette portion, which are joined together, with a cuvette cavity, an inlet passage and an outlet passage being formed between the first cuvette portion and the second cuvette portion, the inlet passage and the outlet passage both in communication with the cuvette cavity, wherein the outlet passage is provided therein with a labyrinth-like sealing structure, which prevents backfill of a gas that has been discharged from the outlet passage during filling of a liquid to be analyzed in the cuvette.
HIGH-LEVEL MULTIPLEXING REACTION VESSEL, REAGENT SPOTTING DEVICE AND ASSOCIATED METHODS
Reaction vessels, cartridges, devices and methods for facilitating high-level multiplexing are described herein. Such reaction vessels can include a planar frame defining a fluidic path between a first planar substrate and a second planar substrate, a fluidic interface is located at one end of the planar frame with a pair of fluidic ports, a well chamber and a pre-amplification chamber. Devices for spotting reagents in wells of high-level multiplexing reaction vessels and improved reagent solutions are also described herein.
Physical quantity measurement device having a stepped portion to prevent particles from entering the measurement flow channel
A physical quantity measurement device that measures a physical quantity of a fluid has an inflow port and an outflow port, and includes a passage flow channel, a branch flow channel, and a physical quantity detector. An inner peripheral surface of the passage flow channel extends over a pair of facing surfaces, which face each other across the flow passage boundary portion and the inflow port on an upstream side of the flow channel boundary portion. The inner peripheral surface further includes an inflow step surface which forms a step facing the inflow port side.
SYSTEMS AND METHODS FOR FLUID SENSING USING PASSIVE FLOW
Aspects relate to systems and methods for fluid sensing using passive flow. An exemplary system includes a microfluidic device, the microfluidic device including at least a reservoir configured to contain at least a fluid and at least a passive flow component in fluidic communication with the at least a reservoir and configured to flow the at least a fluid with predetermined flow properties, at least an sensor device configured to be in sensed communication with the at least a fluid and detect at least a sensed property; and at least an sensor interface configured to wet at least a surface of the at least a sensor device with the at least a fluid.
ANALYSIS DEVICE, ANALYSIS APPARATUS FOR IDENTIFICATION OF ANALYTES IN FLUIDS AND USE OF THE ANALYSIS DEVICE
An analysis device and an analysis apparatus for identification of analytes in fluids applying the SERS effect which provides a safe way to perform analysis, avoiding an accidental cross-contamination without the use of disinfectant products; the analysis device comprising a casing enclosing a sample region for receiving a fluid sample, and a nanoparticle region for storing at least a nanoparticle fluid; the sample region and the nanoparticle region being in fluid communication each other through a passage; driving means in fluid communication with the passage; a mixing region in fluid communication with the passage; and the casing being adapted to allow an incident monochromatic light from an external source to strike on the mixing region, and a reflected light from the mixing region to leave the casing.
MICROFLUIDIC DEVICES, AND METHODS OF MAKING AND USING THE SAME
The present disclosure provides methods and systems for assaying a sample. A microfluidic device to perform an assay of a sample (e.g., biological sample) is described having a sample application site, a porous component and a flow channel. The porous component provides for uniform dissolution of a reagent and mixing of the sample and reagent without filtering the sample.