Ion analyzer
US-2018374694-A1 · Dec 27, 2018 · US
US2017200596A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2017200596-A1 |
| Application number | US-201715402108-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jan 9, 2017 |
| Priority date | Jan 12, 2016 |
| Publication date | Jul 13, 2017 |
| Grant date | — |
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A sample introduction system for a spectrometer comprises a desolvation region that receives or generates sample ions from a solvent matrix and removes at least some of the solvent matrix from the sample ions. A separation chamber downstream of the desolvation region has a separation chamber inlet communicating with the desolvation region, for receiving the desolvated sample ions along with non-ionised solvent and solvent ion vapours. The separation chamber has electrodes for generating an electric field within the separation chamber, defining a first flow path for sample ions between the separation chamber inlet and a separation chamber outlet. Unwanted solvent ions and non-ionised solvent vapours are directed away from the separation chamber outlet. The sample introduction system has a reaction chamber with an inlet communicating with the separation chamber outlet, for receiving the sample ions from the separation chamber and for decomposing the received ions into smaller products.
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1 . A sample introduction system for a spectrometer, comprising: a desolvation region, arranged to receive or generate sample ions from a solvent matrix, and to remove at least a proportion of the solvent matrix from the sample ions; a separation chamber positioned downstream of the desolvation region and having a separation chamber inlet in fluid communication with the desolvation region, for receiving the desolvated sample ions along with solvent vapours comprising non-ionised solvent and solvent ions, the separation chamber having electrodes for generating an electric field within the separation chamber, which defines a first flow path for sample ions between the separation chamber inlet and a separation chamber outlet, but which causes unwanted solvent ions and unwanted non-ionised solvent vapours to be directed away from the separation chamber outlet; and a reaction chamber having an inlet in fluid communication with the separation chamber outlet, for receiving the sample ions from the separation chamber and for decomposing the received ions into smaller products. 2 . The sample introduction system of claim 1 , wherein ions and non-ionised solvent enter the separation chamber through the separation chamber inlet in a first direction defining a first axis, and wherein sample ions following the first flow path exit the separation chamber through the separation chamber outlet in a second direction defining a second axis, and wherein the first and second axes are not coincident. 3 . The sample introduction system in accordance with claim 1 , wherein the separation chamber further comprises a gas supply for supplying a flow of gas in a direction transverse or counter to the direction of travel of ions as they enter the separation chamber through the separation chamber inlet, so as to cause sample ions, having a first ion mobility or range of ion mobilities, to be directed along the said first flow path towards the separation chamber outlet, but to cause unwanted solvent ions, having a second ion mobility or range of ion mobilities different to the said first ion mobility or range of mobilities, and unwanted non-ionised solvent, to be directed along one or more further flow paths away from the separation chamber outlet. 4 . The sample introduction system in accordance with claim 2 , wherein the first and second axes are substantially parallel but offset from one another. 5 . The sample introduction system in accordance with claim 1 , wherein the electrodes of the separation chamber comprise a first electrode arrangement arranged to generate a DC and/or an AC electric field, so as to cause sample ions, having a first mass to charge ratio or range of mass to charge ratios, to be directed along the said first flow path towards the separation chamber outlet, but to cause unwanted solvent ions, having a second mass to charge ratio or range of mass to charge ratios, different to the said first mass to charge ratio or range of ratios, and unwanted non-ionised solvent to be directed away from the separation chamber outlet. 6 . The sample introduction system of claim 5 , wherein the solvent ions have a higher or lower mass to charge ratio or range of mass to charge ratios than that or those of the sample ions, the DC and/or AC component of the first electrode arrangement guiding the said sample ions toward the separation chamber outlet whilst dispersing the said relatively heavier or lighter solvent ions. 7 . The sample introduction system of claim 5 , wherein the said first electrode arrangement of the separation chamber cause the said sample ions to be guided along a curved flow path defining the said first flow path, and further wherein the first axis is substantially perpendicular to the said second axis. 8 . The sample introduction system of claim 5 , wherein the first electrode arrangement is arranged to generate an asymmetric AC electric field so as to cause unwanted solvent ions to be dispersed within the separation chamber whilst sample ions are directed toward the separation chamber outlet. 9 . The sample introduction system of claim 2 , wherein the electrodes of the separation region comprise a first electrode arrangement arranged to generate both a DC and an AC electric field and further comprise a second electrode arrangement arranged to generate a DC electric field that accelerates ions in a direction having a component perpendicular to the said first direction defining the said first axis so as to be directed by the first electrode arrangement along the said first flow path towards the separation chamber outlet, but to cause unwanted solvent ions, having a second mass to charge ratio or range of mass to charge ratios, different to the said first mass to charge ratio or range of ratios, and unwanted non-ionised solvent to be directed away from the separation chamber outlet. 10 . (canceled) 11 . The sample introduction system of claim 9 , further comprising a power supply arranged to supply AC and/or DC voltages to the electrodes, wherein the power supply is configured to supply a first DC voltage to the second electrode arrangement so as to deflect sample ions away from the first direction defining the first axis, wherein the power supply is configured to supply a second DC voltage to the first electrode arrangement so as to accelerate sample ions in a direction having a component perpendicular with the said first axis, and further wherein the power supply is configured to apply an AC voltage to the first electrode arrangement at a frequency that guides the sample ions into the separation chamber outlet. 12 . The sample introduction system of claim 1 , further comprising a liquid separator upstream of the desolvation region for separating one or more components of the sample in the solvent matrix, and an ionization source for receiving the said separated sample from the liquid separator and ionizing it so as to produce the said sample ions in the solvent matrix. 13 . The sample introduction system of claim 12 , wherein the ionization source is positioned in the desolvation region, upstream of, and spatially separated from, the separation region inlet. 14 . (canceled) 15 . (canceled) 16 . The sample introduction system of claim 1 , wherein the desolvation region further includes a heated channel positioned therein, at or adjacent to the separation chamber inlet. 17 . The sample introduction system of claim 16 , wherein the heated channel is extended in one dimension to increase transmitted ion current without compromising desolvation. 18 . The sample introduction system of claim 16 , wherein a single ionisation source or array of ionisation sources is extended along the extension of the heated channel 19 . The sample introduction system of claim 1 , wherein the desolvation region is formed within a desolvation chamber, the sample introduction system further comprising a heated gas supply connected to the desolvation chamber for supply of a heated gas thereto. 20 . The sample introduction system of claim 1 , wherein the desolvation region is formed within a desolvation chamber, the sample introduction system further comprising a pumping arrangement connected to the desolvation chamber for adjusting the pressure within the desolvation chamber. 21 . The sample introduction system of claim 20 , wherein the pumping arrangement is further connected to the separation chamber for adjusting the pressure therein. 22 . The sample introduction system of claim 21 , further compris
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