Patent classifications
G01N30/93
SEMI-AUTONOMOUS MEMS MICRO-CALIBRATION DEVICE
A system for solventless calibration of volatile or semi-volatile compounds and methods thereof. The system includes a fluid path having a first end configured to be operably coupled to a fluid source and a second end configured to be operably coupled to the analytical instrument. A solid sorbent is disposed along the fluid path and is configured to absorb an analyte. The flow of fluid along the fluid path from the first end to the second end causes absorbed analyte to be desorbed from the solid sorbent at a desired concentration to the instrument.
SEMI-AUTONOMOUS MEMS MICRO-CALIBRATION DEVICE
A system for solventless calibration of volatile or semi-volatile compounds and methods thereof. The system includes a fluid path having a first end configured to be operably coupled to a fluid source and a second end configured to be operably coupled to the analytical instrument. A solid sorbent is disposed along the fluid path and is configured to absorb an analyte. The flow of fluid along the fluid path from the first end to the second end causes absorbed analyte to be desorbed from the solid sorbent at a desired concentration to the instrument.
Method and system for solventless calibration of volatile or semi-volatile compounds
A system for solventless calibration of volatile or semi-volatile compounds and methods thereof. The system includes a fluid path having a first end configured to be operably coupled to a fluid source and a second end configured to be operably coupled to the analytical instrument. A solid sorbent is disposed along the fluid path and is configured to absorb an analyte. The flow of fluid along the fluid path from the first end to the second end causes absorbed analyte to be desorbed from the solid sorbent at a desired concentration to the instrument.
Method and system for solventless calibration of volatile or semi-volatile compounds
A system for solventless calibration of volatile or semi-volatile compounds and methods thereof. The system includes a fluid path having a first end configured to be operably coupled to a fluid source and a second end configured to be operably coupled to the analytical instrument. A solid sorbent is disposed along the fluid path and is configured to absorb an analyte. The flow of fluid along the fluid path from the first end to the second end causes absorbed analyte to be desorbed from the solid sorbent at a desired concentration to the instrument.
ELECTRO-SPUN FIBERS AND APPLICATIONS THEREOF
A supported nanofiber medium useful for segregating chemical species is provided by selecting a polymer, selecting a substrate; and electrospinning the polymer to form a nanofiber medium on the supporting substrate. When the substrate is a planar surface, the nanofiber medium will be a mat suitable for conducting chromatographic separation. When the substrate is a filament, the nanofiber medium is an annular mat suitable for solid phase microextraction. The nanofiber media formed may be selectively cross-linked and at least partially carbonized to carbon nanofibers. The nanofiber medium is supported on the substrate without the use of binder material.
ELECTRO-SPUN FIBERS AND APPLICATIONS THEREOF
A supported nanofiber medium useful for segregating chemical species is provided by selecting a polymer, selecting a substrate; and electrospinning the polymer to form a nanofiber medium on the supporting substrate. When the substrate is a planar surface, the nanofiber medium will be a mat suitable for conducting chromatographic separation. When the substrate is a filament, the nanofiber medium is an annular mat suitable for solid phase microextraction. The nanofiber media formed may be selectively cross-linked and at least partially carbonized to carbon nanofibers. The nanofiber medium is supported on the substrate without the use of binder material.
METHOD AND DEVICE FOR LIQUID DELIVERY TO THE ADSORBENT LAYER
To develop the chromatogram, a prepared plate is placed in a chromatographic chamber where a tip, connected to multiple supply lines for different eluent components, enters from below. Each line includes a reservoir, pump, and tubing system. The tip is moved along a set path by a three-dimensional machine while the eluents are pumped with varying flow rates, controlled by a computer to produce a changing eluent composition over time. A digital camera tracks the position of the eluent front, and this data is used by the computer to adjust pump operations in real-time. Once the eluent front reaches its final position, pumping stops. The plate is then removed and dried, resulting in a developed chromatogram.
METHOD AND DEVICE FOR LIQUID DELIVERY TO THE ADSORBENT LAYER
To develop the chromatogram, a prepared plate is placed in a chromatographic chamber where a tip, connected to multiple supply lines for different eluent components, enters from below. Each line includes a reservoir, pump, and tubing system. The tip is moved along a set path by a three-dimensional machine while the eluents are pumped with varying flow rates, controlled by a computer to produce a changing eluent composition over time. A digital camera tracks the position of the eluent front, and this data is used by the computer to adjust pump operations in real-time. Once the eluent front reaches its final position, pumping stops. The plate is then removed and dried, resulting in a developed chromatogram.