Claims
- 1. A system for delivering samples for high throughput mass spectrometric analysis, the system comprising:
a liquid reservoir; a first valve coupled to the liquid reservoir; a first pump and a second pump for delivering the liquid, wherein the first and second pumps are coupled to the first valve and wherein the delivery flow rate of the first pump is greater than the delivery flow rate of the second pump; a second valve coupled to the first valve; and an injection system having a sample injector, wherein the injection system is coupled to the second valve and wherein the injection system can deliver a sample to the second valve.
- 2. A system in accordance with claim 1, wherein the second valve is coupled to an atmospheric-pressure ionization source.
- 3. A system in accordance with claim 2, wherein the atmospheric-pressure ionization source is at least one of the following: an electrospray ionization source and an atmospheric pressure chemical ionization source.
- 4. A system in accordance with claim 1, further comprising a controller to control at least one of the following: the first valve, the first pump, the second pump, the second valve and the injection system.
- 5. A system in accordance with claim 1, further comprising a transfer line connected to the second valve, wherein the injection system can deliver a sample to the transfer line via the second valve, and wherein the transfer line can be capable of connecting to an atmospheric-pressure ionization source.
- 6. A system in accordance with claim 1, wherein the first valve consists of a two position, multi-port fluid processor.
- 7. A system in accordance with claim 1, wherein the second valve consists of a two position, multi-port fluid processor.
- 8. A system in accordance with claim 1, wherein the second pump comprises a programmable syringe pump.
- 9. A system in accordance with claim 8, wherein the first pump comprises a programmable syringe pump.
- 10. A system in accordance with claim 9, wherein the first pump has a first volume capacity and the second pump has a second volume capacity and wherein the first volume capacity is greater than the second volume capacity.
- 11. A system in accordance with claim 1, wherein a delivery flow rate of the injection system is greater than the delivery flow rate of the second pump
- 12. A system for generating ionized samples for high throughput mass spectrometric analysis, the system comprising:
a liquid reservoir; a first valve coupled to the liquid reservoir; a first pump and a second pump for delivering the liquid, wherein the first and second pumps are coupled to the first valve and wherein the delivery flow rate of the first pump is greater than the delivery flow rate of the second pump; a second valve coupled to the first valve; an injection system having a sample injector, wherein the injection system is coupled to the second valve and can deliver a sample to the second valve; an atmospheric-pressure ionization chamber; an atmospheric-pressure ionization sprayer coupled to the second valve; a nebulizer gas source in fluid communication with the atmospheric-pressure ionization sprayer; and a voltage supply source coupled to the atmospheric-pressure ionization sprayer.
- 13. A system in accordance with claim 12, wherein the atmospheric-pressure ionization sprayer is at least one of the following: an electrospray ionization sprayer and an atmospheric-pressure chemical ionization sprayer.
- 14. A system in accordance with claim 12, wherein a distal end of the electrospray ionization sprayer is located within the electrospray ionization chamber;
- 15. A system according to claim 12, further comprising a controller to control at least one of the following: the first valve, the first pump, the second pump, the second valve and the injection system, the electrospray ionization sprayer, the nebulizer gas source and the voltage supply source.
- 16. A system according to claim 12, further comprising a transfer line connected to the second valve, wherein the injection system can deliver a sample to the transfer line via the second valve, and wherein the transfer line is also connected to the electrospray ionization sprayer.
- 17. A system according to claim 12, wherein the first valve consists of a two position, multi-port fluid processor.
- 18. A system according to claim 12, wherein the second valve consists of a two position, multi-port fluid processor.
- 19. A system according to claim 12, wherein the second pump comprises a programmable syringe pump.
- 20. A system according to claim 19, wherein the first pump comprises a programmable syringe pump.
- 21. A system according to claim 12, wherein a delivery flow rate of the injection system is greater than the delivery flow rate of the second pump.
- 22. A system according to claim 12, further comprising:
a puffer valve coupled to the nebulizer gas source and the electrospray ionization sprayer; and a gas puffer coupled to the puffer valve, wherein the puffer valve controls the delivery of the nebulizer gas to the electrospray ionization sprayer and the gas puffer.
- 23. A system in accordance with claim 22, wherein a distal end of the gas puffer is located within the electrospray ionization chamber and aligned with the distal end of the electrospray ionization sprayer.
- 24. A system according to claim 22, further comprising a controller to control at least one of the following: the puffer valve and the nebulizer gas source.
- 25. A method for delivering samples for high throughput mass spectrometric analysis, the method comprising:
A. delivering a sample to a transfer line which can be coupled to an ionization sprayer of an atmospheric-pressure ionization source; B. initiating a first flow of a liquid to the transfer line containing the sample; C. terminating the first flow; and D. rinsing the transfer line by directing a second flow of a liquid to the transfer line, wherein the second flow is greater than the first flow.
- 26. A method in accordance with claim 25, wherein the first flow is by controlled by a low flow pump and the second flow is controlled by a high flow pump.
- 27. A method in accordance with claim 26, whereupon the high flow pump is filled with the liquid during at least a portion of when the low flow pump is controlling the first flow and whereupon the low flow pump is filled with the liquid during at least a portion of when the high flow pump is controlling the second flow.
- 28. A method in accordance with claim 25, wherein the transfer line can be coupled to at least one of the following: an electrospray ionization source and an atmospheric-pressure chemical ionization source.
- 29. A method in accordance with claim 25, wherein the delivering of the sample to the transfer line is controlled by an injector system having an sample injector and further wherein the injector system rinses the sample injector and prepares the next sample for delivery after a first sample has been delivered to the transfer line.
- 30. A method in accordance with claim 29, wherein the injector system delivers the sample to the transfer line at a flow rate which is greater than the first flow.
- 31. A method in accordance with claim 25, wherein the transfer line is coupled to an atmospheric-pressure ionization sprayer of an atmospheric-pressure ionization source and wherein the method further comprises:
energizing the atmospheric-pressure ionization sprayer after the initiation of the first flow with a voltage potential and initiating the delivering of a nebulizer gas to the atmospheric-pressure ionization sprayer to generate an ionized plume within the atmospheric-pressure ionization source, wherein the ionized plume consists of at least a portion of the sample which has become ionized; conducting mass spectrometric analysis of the ionized sample; and de-energizing the atmospheric-pressure ionization sprayer prior to terminating the first flow and terminating the delivery of the nebulizer gas to the atmospheric-pressure ionization sprayer.
- 32. A method in accordance with claim 31, further comprising directing a gas at a distal end of the atmospheric-pressure ionization sprayer to remove any droplets which may be present at the distal end, wherein the gas is directed at the distal end of the atmospheric-pressure ionization sprayer prior to the atmospheric-pressure ionization sprayer being energized.
- 33. A method in accordance with claim 32, wherein the atmospheric-pressure ionization sprayer is an electrospray ionization sprayer.
- 34. A method in accordance with claim 32, wherein the gas directed at the distal end of the atmospheric-pressure ionization sprayer is a nebulizer gas.
- 35. A method in accordance with claim 25, wherein the rinsing of the transfer line and atmospheric-pressure ionization sprayer takes approximately nine seconds or less.
- 36. A system for delivering samples for high-throughput mass spectrometric analysis to an atmospheric-pressure ionization source, comprising:
a first pump and a second pump for delivering liquid, wherein the first and second pumps are coupled to a first valve and wherein the delivery flow rate of the first pump is greater than the delivery flow rate of the second pump; a second valve, wherein the second valve is coupled to the first valve; an injection system coupled to the second valve, wherein the injection system can deliver a sample to the second valve.
- 37. A method for delivering samples for high throughput mass spectrometric analysis, the method comprising:
A. delivering a sample to a transfer line which can be coupled to an ionization sprayer of an atmospheric-pressure ionization source; B. initiating a first flow of a liquid to the transfer line containing the sample; C. energizing the atmospheric-pressure ionization sprayer with a voltage potential and initiating the delivering of a nebulizer gas to the atmospheric-pressure ionization sprayer to generate an ionized plume within the atmospheric-pressure ionization source; D. conducting mass spectrometric analysis of the ionized sample; E. de-energizing the atmospheric-pressure ionization sprayer and terminating the delivery of the nebulizer gas to the atmospheric-pressure ionization sprayer; F. terminating the first flow; G. rinsing the transfer line by directing a second flow of a liquid to the transfer line, wherein the second flow is greater than the first flow; and H. repeating steps A through G for the next sample to be analyzed.
REFERENCE TO RELATED U.S. APPLICATIONS
[0001] This application claims priority to U.S. Provisional Patent Application No. 60/295,588 filed Jun. 4, 2001, the entire contents of which are herein incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60295588 |
Jun 2001 |
US |