Claims
- 1. A multiple longitudinal flow cell channel electromagnetic radiation absorbance monitoring system comprising:
a source of electromagnetic radiation; a multiple-longitudinal flow cell channel system; and a detector chip; longitudinal axes of said multiple-longitudinal flow cell channels in said multiple-longitudinal flow cell channel system being oriented substantially parallel to one another; said source of electromagnetic radiation having dimensions sufficient to simultaneously directly enter electromagnetic radiation to at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system; and said detector chip being of sufficient dimensions to simultaneously directly receive electromagnetic radiation from at least said at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system; each longitudinal flow cell channel of said multiple-longitudinal flow cell channel system having means for entering electromagnetic radiation directly from said source of electromagnetic radiation, and at least one of said longitudinal flow cell channels also having inlet and outlet means for flowing analyte containing fluid through a portion thereof, in the pathway of said electromagnetic radiation, each said longitudinal flow cell channel in said multiple-longitudinal flow cell channel cell system being oriented to direct electromagnetic radiation entered thereinto directly from said source of electromagnetic radiation, after it passes through said longitudinal flow cell channel, directly onto said detector chip such that electromagnetic radiation passing through at least two longitudinal flow cell channels arrives directly at said detector chip at substantially different locations thereupon.
- 2. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which said source of electromagnetic radiation provides wavelengths in the UV, and said detector chip comprises detector elements suitable for monitoring visible wavelengths, wherein a fluorophore is present with respect to the detector elements thereof such that said detector elements are sensitized to said UV wavelengths thereby.
- 3. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which said multiple-channel system comprises a monolithic mass of material through which are present at least two longitudinal flow cell channels, each of said at least two longitudinal flow cell channels having, as means for entering and exiting electromagnetic radiation a selection from the group consisting of:
sapphire ball/lens; lengths of quartz rod; fused silica lens elements; glass lens elements; plastic lens elements; fiber optics; embedded therein, one at each end thereof, with a void space being present centrally in each said longitudinal flow cell channel; the means for entering and exiting electromagnetic radiation at one end of each of said at least two longitudinal flow cell channels being positioned to receive electromagnetic radiation directly from said source of electromagnetic radiation, and the means for entering and exiting electromagnetic radiation at the other end of each of said at least two longitudinal flow cell channels being positioned to direct electromagnetic radiation directly to said detector chip, and wherein present means for flowing analyte containing fluid through a longitudinal flow cell channel comprise two access channels which have oblique to perpendicular access to said centrally located longitudinal flow cell channel void space.
- 4. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 which further comprises a mask comprising at least two holes and being positioned between said source of electromagnetic radiation and the means for entering electromagnetic radiation at the end of said at least two longitudinal flow cell channels positioned to receive electromagnetic radiation from said source of electromagnetic radiation, holes in said at least two hole mask being positioned so that each passes electromagnetic radiation substantially to one means for entering electromagnetic radiation.
- 5. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 which further comprises an electromagnetic radiation wavelength filter between said source of electromagnetism and said detector chip.
- 6. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which said detector chip is a linear array.
- 7. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which said detector chip is selected from the group consisting of a linear or two dimensional array of:
128; 256; 512; 2048; 3072; and 4096; pixels.
- 8. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1, in which at least one longitudinal flow cell channel having inlet and outlet means for flowing analyte containing fluid through a portion thereof, is further accessed between said inlet and outlet means by means which in use can allow fluorescent electromagnetic radiation induced in said at least one longitudinal flow cell channel to exit therefrom in a direction other than along the longitudinal direction of said at least one said longitudinal flow cell channel, such that a detector chip can be placed with respect thereto so as to intercept said fluorescence electromagnetic radiation, with fluorescence emitted from different longitudinal cell channels arriving at said detector chip at substantially different locations thereupon.
- 9. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 3 in which said mass of material is selected from the group consisting of:
PEEK; fused silica; glass; titanium; and passivated stainless steel.
- 10. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which said source of electromagnetic radiation is selected from the group consisting of:
mercury vapor lamp; tungsten filament bulb; quartz-halogen bulb Xenon flash lamp; deuterium lamp; and argon ion laser.
- 11. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which said multiple-channel system comprises a mass of material through which are present at least two longitudinal flow cell channels, at least one of said at least two longitudinal flow cell channels having a selection from the group consisting of:
sapphire ball/lens; lengths of quartz rod; and fiber optics; embedded therein, at each end thereof; the sapphire ball/lens and optional length of quartz rod or fiber optic at one end of said at least one longitudinal flow cell channel being positioned to receive electromagnetic radiation from said source of electromagnetic radiation, and the sapphire ball and optional length of quartz rod or fiber optic at the other end of said at least one longitudinal flow cell channels being positioned to direct electromagnetic radiation to said detector chip, and wherein means for flowing analyte containing fluid through a longitudinal flow cell channel comprise two access channels which have oblique to perpendicular access to said longitudinal flow cell channel, centrally between said two sapphire ball/lens and optional length of quartz rods, or fiber optics.
- 12. A method of determining a ratio of electromagnetic radiation radiant powers one thereof being associated with absorption of electromagnetic radiation by a sample and the other thereof with absorption by a reference, said method comprising the steps of:
a. providing a multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system comprising:
a source of electromagnetic radiation; a multiple-longitudinal flow cell channel system; and a detector chip; longitudinal axes of said multiple-longitudinal flow cell channels in said multiple-longitudinal flow cell channel system being oriented substantially parallel to one another; said source of electromagnetic radiation having dimensions sufficient to simultaneously directly enter electromagnetic radiation to at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system; said detector chip being of sufficient dimensions to simultaneously directly receive electromagnetic radiation from at least said at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system; each longitudinal flow cell channel of said multiple-longitudinal flow cell channel system having means for entering electromagnetic radiation directly from said source of electromagnetic radiation, and at least one of said longitudinal flow cell channels also having means for flowing analyte containing fluid through a portion thereof in the pathway of said electromagnetic radiation, each said longitudinal flow cell channel in said multiple-longitudinal flow cell channel cell system being oriented to direct electromagnetic radiation entered thereinto directly from said source of electromagnetic radiation, after it passes through said longitudinal flow cell channel, directly onto said detector chip such that electromagnetic radiation passing through at least two longitudinal flow cell channels arrives directly at said detector chip at substantially different locations thereupon; b. causing an analyte containing fluid to flow into at least one of said longitudinal flow cell channels; c. causing a beam of electromagnetic radiation from said source of electromagnetic radiation to pass through said at least one of said longitudinal flow cell channels which has analyte containing fluid therewithin, as well as another beam of electromagnetic radiation from said source of electromagnetic radiation to pass through another of said longitudinal flow cell channels which does not have said analyte containing fluid therewithin; d. causing said beams of electromagnetic radiation to exit said longitudinal flow cell channels which have analyte containing fluid therewithin and which do not have said analyte containing fluid therewithin, such that said electromagnetic radiation beams which exit from both said longitudinal flow cell channels directly arrive at said detector chip at substantially different locations thereupon; e. simultaneously, but separately monitoring the radiant power of at least two groupings of binned pixels in said detector chip, which two groupings of binned pixels each receive electromagnetic from substantially only one of each of said longitudinal flow cell channels, and forming a ratio of said radiant powers ((p)/(p0)).
- 13. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system comprising:
a source of electromagnetic radiation; a multiple-longitudinal flow cell channel system; and a detector chip; longitudinal axes of said multiple-longitudinal flow cell channels in said multiple-longitudinal flow cell channel system being oriented substantially parallel to one another; said detector chip being of sufficient dimensions to simultaneously directly receive electromagnetic radiation from at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system; each longitudinal flow cell channel of said multiple-longitudinal flow cell channel system being formed in a monolithic mass of material and having means for entering electromagnetic radiation from said source of electromagnetic radiation; at least one of said longitudinal flow cell channels also having means for placing a sample therein in the pathway of said electromagnetic radiation, each said longitudinal flow cell channel in said multiple-longitudinal flow cell channel cell system being oriented to direct electromagnetic radiation entered thereinto from said source of electromagnetic radiation, after it passes through said longitudinal flow cell channel, onto said detector chip such that electromagnetic radiation passing through at least two longitudinal flow cell channels arrive at said detector chip at substantially different locations thereupon.
- 14. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which said source of electromagnetic radiation provides wavelengths in the UV, and said detector chip comprises detector elements suitable for monitoring visible wavelengths, wherein a fluorophore is present with respect to the detector elements thereof such that said detector elements are sensitized to said UV wavelengths thereby.
- 15. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 which further comprises a mask comprising at least two holes and being positioned between said source of electromagnetic radiation and means for entering electromagnetic radiation such that each hole passes electromagnetic radiation to substantially one means for entering electromagnetic radiation.
- 16. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 which further comprises an electromagnetic radiation wavelength filter between said source of electromagnetic radiation and said detector chip.
- 17. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which said detector chip is a linear array.
- 18. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which said detector chip is selected from the group consisting of a linear, or two dimensional, array of:
128; 256; 512; 2048; 3072; and 4096; pixels.
- 19. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13, in which at least one longitudinal flow cell channel having inlet and outlet means for flowing analyte containing fluid through a portion thereof, is further accessed between said inlet and outlet means by means which in use can allow fluorescent electromagnetic radiation induced in said at least one longitudinal flow cell channel to exit therefrom in a direction other than along the longitudinal direction of said at least one said longitudinal flow cell channel, such that a detector chip can be placed with respect thereto so as to intercept said fluorescence electromagnetic radiation, with fluorescence emitted from different longitudinal cell channels arriving at said detector chip at substantially different locations thereupon.
- 20. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which said monolithic mass of material is selected from the group consisting of:
PEEK; fused silica; glass; titanium; and passivated stainless steel.
- 21. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which said detector chip is coated with fluorescing material immediately prior detector elements thereof.
- 22. A method of monitoring electromagnetic radiation radiant power, said method comprising the steps of:
a. providing a multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system comprising:
a source of electromagnetic radiation; a multiple-longitudinal flow cell channel system; and a detector chip; longitudinal axes of said multiple-longitudinal flow cell channels in said multiple-longitudinal flow cell channel system being oriented substantially parallel to one another; said detector chip being of sufficient dimensions to simultaneously receive electromagnetic radiation from at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system; each longitudinal flow cell channel of said multiple-longitudinal flow cell channel system being formed in a monolithic mass of material and having means for entering electromagnetic radiation from said source of electromagnetic radiation; at least one of said longitudinal flow cell channels also having means for placing a sample in the pathway of said electromagnetic radiation, each said longitudinal flow cell channel in said multiple-longitudinal flow cell channel cell system being oriented to direct electromagnetic radiation entered thereinto from said source of electromagnetic radiation, after it passes through said longitudinal flow cell channel, onto said detector chip such that electromagnetic radiation passing through at least two longitudinal flow cell channels arrive at said detector chip at substantially different locations thereupon; b. causing a sample to be present in at least one of said longitudinal flow cell channels; c. causing electromagnetic radiation from said source of electromagnetic radiation to pass through said at least two of said longitudinal flow cell channels which has said sample therewithin; d. causing said electromagnetic radiation to exist said at least one longitudinal flow cell channel which has sample therewithin and another longitudinal flow cell channel therein, such that said electromagnetic radiation which exists from each said longitudinal flow cell channel arrives at said detector chip at substantially different locations thereupon; e. simultaneously, but separately monitoring the radiant power of at least two locations on said detector chip, each of which two locations receive electromagnetic from substantially only one of each of said longitudinal flow cell channels.
- 23. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which there are at least eight longitudinal flow cell channels present.
- 24. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which there are at least eight longitudinal flow cell channels present.
- 25. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which at least one of the longitudinal flow cell channels further has a longitudinal flow cell channel accessing means present therein sealed with an electromagnetic radiation transporting means which extends therefrom.
- 26. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which at least one of the longitudinal flow cell channels further has a longitudinal flow cell channel accessing means present therein sealed with an electromagnetic radiation transporting means which extends therefrom.
- 27. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1 in which the source of electromagnetic radiation is selected from the group consisting of:
mercury lamp; tungsten filament bulb; quartz-halogen bulb Xenon flash lamp; deuterium lamp; and argon ion laser.
- 28. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which the source of electromagnetic radiation is selected from the group consisting of:
mercury lamp; tungsten filament bulb; quartz-halogen bulb Xenon flash lamp; deuterium lamp; and argon ion laser.
- 29. A multiple longitudinal flow cell channel electromagnetic radiation monitoring system comprising:
a source of electromagnetic radiation; a multiple-longitudinal flow cell channel system; and a detector chip; longitudinal axes of said multiple-longitudinal flow cell channels in said multiple-longitudinal flow cell channel system being oriented substantially parallel to one another; said source of electromagnetic radiation simultaneously providing UV wavelength range electromagnetic radiation to at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system a by selection from the group consisting of: directly; via optical fibers; and via beam expanding means; said detector chip being of sufficient dimensions to simultaneously receive electromagnetic radiation from at least said at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system via a selection from the group consisting of: directly; via light fibers; and via focusing means; at least one of said longitudinal flow cell channels also having means for flowing analyte containing fluid through a portion thereof in the pathway of electromagnetic radiation entered thereinto; each said longitudinal flow cell channel in said multiple-longitudinal flow cell channel cell system being constructed and oriented to direct electromagnetic radiation entered thereinto, or developed as a result of fluorescence caused thereby, to be directed to said detector chip such that electromagnetic radiation from at least two longitudinal flow cell channels arrives directly at said detector chip at substantially different locations thereupon; said multiple-longitudinal flow cell channel electromagnetic radiation monitoring system detector chip having fluorophore material positioned with respect to detector elements thereof such that said detector elements are sensitized to UV.
- 30. A multiple-longitudinal flow cell channel electromagnetic radiation monitoring system as in claim 29 which further comprises at least one selection from the group consisting of:
a. said source of electromagnetic radiation is selected from the group consisting of:
mercury lamp; tungsten filament bulb; quartz-halogen bulb Xenon flash lamp; deuterium lamp; and argon ion laser; b. said multiple-longitudinal flow cell channel electromagnetic radiation monitoring system further comprises a mask comprising at least two holes and being positioned between said source of electromagnetic radiation and the means for entering and exiting electromagnetic radiation such that each hole passes electromagnetic radiation to substantially one means for entering and exiting electromagnetic radiation; c. said multiple-longitudinal flow cell channel electromagnetic radiation monitoring system further comprises an electromagnetic radiation wavelength filter between said source of electromagnetic radiation and said detector chip; d. said multiple-longitudinal flow cell channel electromagnetic radiation monitoring system detector chip is a linear array; e. said multiple-longitudinal flow cell channel electromagnetic radiation monitoring system detector chip is selected from the group consisting of a linear, or two dimensional, array of:
128; 256; 512; 2048; 3072; 4096; pixels; f. at least one longitudinal flow cell channel having inlet and outlet means for flowing analyte containing fluid through a portion thereof, is further accessed between said inlet and outlet means by means which in use can allow fluorescent electromagnetic radiation induced in said at least one longitudinal flow cell channel to exit therefrom in a direction other than along the longitudinal direction of said at least one said longitudinal flow cell channel, such that a detector chip can be placed with respect thereto so as to intercept said fluorescence electromagnetic radiation, with fluorescence emitted from different longitudinal cell channels arriving at said detector chip at substantially different locations thereupon. g. said multiple-longitudinal flow cell channel electromagnetic radiation monitoring system mass of material is selected from the group consisting of:
PEEK; fused silica; glass; titanium; and passivated stainless steel; h. said multiple-longitudinal flow cell channel electromagnetic radiation monitoring system detector chip having said UV sensitizing fluorophore material positioned directly on the input to detector elements thereof.
- 31. A multiple longitudinal flow cell channel electromagnetic radiation fluorescence monitoring system comprising:
a source of fluorescence causing electromagnetic radiation; a multiple-longitudinal flow cell channel system; and a detector chip; longitudinal axes of said multiple-longitudinal flow cell channels in said multiple-longitudinal flow cell channel system being oriented substantially parallel to one another; said source of fluorescence causing electromagnetic radiation being oriented so as to provide beams of electromagnetic radiation directly into at least two of said longitudinal flow cell channels in said multiple-longitudinal flow cell channel system, said beams of electromagnetic radiation being directed longitudinally into said flow cell channels; said detector chip being of sufficient dimensions to simultaneously directly receive fluorescence electromagnetic radiation exiting from said at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system from a direction other than along the longitudinal axis direction of said at least two longitudinal flow cell channel; each longitudinal flow cell channel of said multiple-longitudinal flow cell channel system having means for entering fluorescence causing electromagnetic radiation from said source of fluorescence causing electromagnetic radiation, and at least one of said longitudinal flow cell channels also having means for flowing analyte containing fluid through a portion thereof in the pathway of said fluorescence causing electromagnetic radiation; at least two of said longitudinal flow cell channels of said multiple-longitudinal flow cell channel system having means for allowing fluorescent electromagnetic radiation to exit therefrom in a direction other than along the longitudinal direction of said at least one said longitudinal flow cell channel; each said means for allowing fluorescent electromagnetic radiation to exit from said longitudinal flow cell channel in said multiple-longitudinal flow cell channel cell system being oriented to direct fluorescence electromagnetic radiation exiting therefrom, directly onto said detector chip such that fluorescence electromagnetic radiation exiting each longitudinal flow cell channels arrives directly at said detector chip at substantially different locations thereupon.
- 32. A method of monitoring fluorescence comprising:
a. providing a multiple longitudinal flow cell channel electromagnetic radiation fluorescence monitoring system which comprises:
a source of fluorescence causing electromagnetic radiation; a multiple-longitudinal flow cell channel system; and a detector chip; longitudinal axes of said multiple-longitudinal flow cell channels in said multiple-longitudinal flow cell channel system being oriented substantially parallel to one another; said source of fluorescence causing electromagnetic radiation being oriented so as to provide beams of electromagnetic radiation directly into at least two of said longitudinal flow cell channels in said multiple-longitudinal flow cell channel system, said beams of electromagnetic radiation being directed longitudinally into said flow cell channels; said detector chip being of sufficient dimensions to simultaneously directly receive fluorescence electromagnetic radiation exiting from said at least two longitudinal flow cell channels in said multiple-longitudinal flow cell channel system from a direction other than along the longitudinal axis direction of said at least two longitudinal flow cell channels; at least two of said longitudinal flow cell channels of said multiple-longitudinal flow cell channel system having means for allowing fluorescent electromagnetic radiation to exit therefrom in a direction other than along the longitudinal direction of said at least one said longitudinal flow cell channel; each longitudinal flow cell channel of said multiple-longitudinal flow cell channel system having means for entering fluorescence causing electromagnetic radiation from said source of fluorescence causing electromagnetic radiation, and at least one of said longitudinal flow cell channels also having means for flowing analyte containing fluid through a portion thereof in the pathway of said fluorescence causing electromagnetic radiation; each said means for allowing fluorescent electromagnetic radiation to exit from said longitudinal flow cell channel in said multiple-longitudinal flow cell channel cell system being oriented to direct fluorescence electromagnetic radiation exiting therefrom, directly onto said detector chip such that fluorescence electromagnetic radiation exiting each longitudinal flow cell channels arrives directly at said detector chip at substantially different locations thereupon; b. causing an analyte containing fluid to flow into at least one of said longitudinal flow cell channels; c. causing a beam of fluorescence causing electromagnetic radiation from said source thereof to pass through said at least two of said longitudinal flow cell channels, at least one of which has analyte containing fluid; d. causing induced fluorescence in said at least two channels to exit said at least two channels and enter said detector chip along a locus other than parallel to the longitudinal channel longitudinal direction, and such that said fluorescence electromagnetic radiation exiting from different longitudinal flow cell channels directly arrives at said detector chip at substantially different locations thereupon.
- 33. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 1, in which at least two of said longitudinal flow cell channels which are located adjacent to one another have inlet and outlet means for flowing analyte containing fluid through a portion thereof, in which the inlet and outlet means of one said longitudinal flow cell channel are offset from said inlet and outlet means of one said adjacent longitudinal flow cell channel.
- 34. A multiple-longitudinal flow cell channel electromagnetic radiation absorbance monitoring system as in claim 13 in which at least two of said longitudinal flow cell channels which are located adjacent to one another have inlet and outlet means for flowing analyte containing fluid through a portion thereof, in which the inlet and outlet means of one said longitudinal flow cell channel are offset from said inlet and outlet means of one said adjacent longitudinal flow cell channel.
- 35. A multiple-longitudinal flow cell channel electromagnetic radiation monitoring system as in claim 29, in which at least two of said longitudinal flow cell channels which are located adjacent to one another have inlet and outlet means for flowing analyte containing fluid through a portion thereof, in which the inlet and outlet means of one said longitudinal flow cell channel are offset from said inlet and outlet means of one said adjacent longitudinal flow cell channel.
- 36. A multiple longitudinal flow cell channel electromagnetic radiation fluorescence monitoring system as in claim 31, in which at least two of said longitudinal flow cell channels which are located adjacent to one another have inlet and outlet means for flowing analyte containing fluid through a portion thereof, in which the inlet and outlet means of one said longitudinal flow cell channel are offset from said inlet and outlet means of one said adjacent longitudinal flow cell channel.
Parent Case Info
[0001] This Application is a CIP of Pending Provisional Application Ser. No. 60/187,175 filed Mar. 2, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60187175 |
Mar 2000 |
US |