Claims
- 1. An ion source comprising:
a body having a gas passage defined therein, a gas inlet connected to the gas passage, and an orifice defined in the body and connected to the gas passage; a capillary through which a sample solution flows towards a tip of the capillary, at least a portion of the capillary being inserted into the body so that at least a portion of the capillary is surrounded by at least a portion of the gas passage, and so that a tip portion of the capillary including the tip of the capillary extends at least partially into the orifice; a gas supplier, connected to the gas inlet, which supplies a gas through the gas inlet into the gas passage to form a gas flow through the gas passage along the capillary and through the orifice past the tip of the capillary so that the gas flow sprays the sample solution from the tip of the capillary; and a flow controller which regulates a pressure of the gas in the gas passage to adjust a characteristic value F/S to a predetermined value, where F is a flow rate of the gas flow at standard conditions (20° C., 1 atmosphere), and S is a difference between a cross section of the orifice and a cross section of the tip portion of the capillary in the orifice.
- 2. An ion source according to claim 1, wherein the flow controller is a flow controller which regulates the pressure of the gas in the gas passage to be 7 atmospheres or less.
- 3. An ion source according to claim 1, wherein the flow controller is a flow controller which regulates the pressure of the gas in the gas passage so that the characteristic value F/S is between 350 meters/second and 700 meters/second.
- 4. An ion source according to claim 1, wherein the flow controller is a flow controller which regulates the pressure of the gas in the gas passage so that the characteristic value F/S is between 500 meters/second and 600 meters/second.
- 5. An ion source comprising:
a body having a gas passage defined therein, a gas inlet connected to the gas passage, and an orifice defined in the body and connected to the gas passage; a capillary through which a sample solution flows towards a tip of the capillary, at least a portion of the capillary being inserted into the body so that at least a portion of the capillary is surrounded by at least a portion of the gas passage, and so that a tip portion of the capillary including the tip of the capillary extends at least partially into the orifice; a gas supplier, connected to the gas inlet, which supplies a gas through the gas inlet into the gas passage to form a gas flow through the gas passage along the capillary and through the orifice past the tip of the capillary so that the gas flow sprays the sample solution from the tip of the capillary; and a flow controller which regulates a pressure of the gas in the gas passage to be 7 atmospheres or less; wherein an axial thickness of a portion of the body having a minimum internal diameter at a tip of the orifice is not greater than 2 mm.
- 6. A mass spectrometer comprising:
a body having a gas passage defined therein, a gas inlet connected to the gas passage, and an orifice defined in the body and connected to the gas passage; a capillary through which a sample solution flows towards a tip of the capillary, at least a portion of the capillary being inserted into the body so that at least a portion of the capillary is surrounded by at least a portion of the gas passage, and so that a tip portion of the capillary including the tip of the capillary extends at least partially into the orifice; a gas supplier, connected to the gas inlet, which supplies a gas through the gas inlet into the gas passage to form a gas flow through the gas passage along the capillary and through the orifice past the tip of the capillary so that the gas flow sprays the sample solution from the tip of the capillary; a flow controller which regulates a pressure of the gas in the gas passage to adjust a characteristic value F/S to a predetermined value, where F is a flow rate of the gas flow at standard conditions (20° C., 1 atmosphere), and S is a difference between a cross section of the orifice and a cross section of the tip portion of the capillary in the orifice; a sample solution supplier, connected to the capillary, which supplies the sample solution to the capillary; and an analyzer, disposed downstream from the orifice in a direction of the gas flow through the orifice, which receives gaseous ions formed from the sample solution sprayed by the gas flow from the tip of the capillary, and which analyzes a mass of the gaseous ions.
- 7. A mass spectrometer according to claim 6, wherein the flow controller is a flow controller which regulates the pressure of the gas in the gas passage to be 7 atmospheres or less.
- 8. A mass spectrometer according to claim 6, wherein the flow controller is a flow controller which regulates the pressure of the gas in the gas passage so that the characteristic value F/S is between 350 meters/second and 700 meters/second.
- 9. A mass spectrometer according to claim 6, wherein the flow controller is a flow controller which regulates the pressure of the gas in the gas passage so that the characteristic value F/S is between 500 meters/second and 600 meters/second.
- 10. A mass spectrometer comprising:
a body having a gas passage defined therein, a gas inlet connected to the gas passage and an orifice defined in the body and connected to the gas passage; a capillary through which a sample solution flows towards a tip of the capillary, at least a portion of the capillary being inserted into the body so that at least a portion of the capillary is surrounded by at least a portion of the gas passage, and so that a tip portion of the capillary including the tip of the capillary extends at least partially into the orifice; a gas supplier, connected to the gas inlet, which supplies a gas through the gas inlet into the gas passage to form a gas flow through the gas passage along the capillary and through the orifice past the tip of the capillary so that the gas flow sprays the sample solution from the tip of the capillary; a flow controller which regulates a pressure of the gas in the gas passage to be 7 atmospheres or less; a sample solution supplier, connected to the capillary, which supplies the sample solution to the capillary; and an analyzer, disposed downstream from the orifice in a direction of the gas flow through the orifice, which receives gaseous ions formed from the sample solution sprayed by the gas flow from the tip of the capillary, and which analyzes a mass of the gaseous ions; wherein an axial thickness of a portion of the body having a minimum internal diameter at a tip of the orifice is not greater than 2 mm.
Priority Claims (2)
Number |
Date |
Country |
Kind |
6-043523 |
Mar 1994 |
JP |
|
6-201767 |
Aug 1994 |
JP |
|
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation of application Ser. No. 09/627,334 filed on Jul. 27, 2000, which is a continuation of application Ser. No. 09/328,664 filed on Jun. 9, 1999, now U.S. Pat. No. 6,147,347, which is a continuation of application Ser. No. 08/783,089 filed on Jan. 14, 1997, now abandoned, which is a continuation of application Ser. No. 08/404,615 filed on Mar. 15, 1995, now abandoned. The contents of application Ser. Nos. 09/627,334, 09/328,664, 08/783,089, and 08/404,615 are hereby incorporated herein by reference in their entirety.
Continuations (4)
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Number |
Date |
Country |
Parent |
09627334 |
Jul 2000 |
US |
Child |
10139241 |
May 2002 |
US |
Parent |
09328664 |
Jun 1999 |
US |
Child |
09627334 |
Jul 2000 |
US |
Parent |
08783089 |
Jan 1997 |
US |
Child |
09328664 |
Jun 1999 |
US |
Parent |
08404615 |
Mar 1995 |
US |
Child |
08783089 |
Jan 1997 |
US |