Quality analysis device
The mass spectrometer addresses dynamic range limitations by employing parallel detection methods and conversion information to accurately detect ions across a wide concentration range, enhancing sensitivity and dynamic range.
Patent Information
- Application Number
- JP2022072101
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-04-26
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2042-04-26
AI Technical Summary
Existing ion detection methods in mass spectrometry face limitations in dynamic range expansion, particularly in high-concentration regions, due to saturation issues and signal-to-noise ratio challenges in both pulse count and analog detection methods, leading to inaccurate ion detection across a wide concentration range.
A mass spectrometer that employs parallel pulse count and analog detection methods, using a branching unit to process current pulse signals into voltage pulses, with a conversion information storage unit to calculate a converted count value based on detector voltage changes, allowing for accurate detection across a wide concentration range.
Enables accurate ion detection over a wide concentration range by calculating a converted count value using conversion information, ensuring high sensitivity and expanded dynamic range regardless of detector voltage changes.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a mass spectrometer, and more particularly to an ion detection technique in a mass spectrometer. [Background technology]
[0002] Secondary electron multipliers are widely used as ion detectors in mass spectrometers. Ion detection methods using secondary electron multipliers can be broadly divided into analog detection methods and pulse count detection methods.
[0003] The analog detection method obtains the detection value as a DC voltage by integrating the minute current pulse signal output from the ion detector. This detection method is capable of detecting ions even when the gain of the ion detector is set low. Therefore, output saturation in the ion detector is unlikely to occur, which is advantageous for expanding the dynamic range when the concentration of the component to be detected is high. On the other hand, this detection method is susceptible to the influence of electrical noise, which is disadvantageous in terms of the signal-to-noise ratio when the concentration of the component to be detected is low.
[0004] On the other hand, the pulse count detection method amplifies the minute current pulse signal output from the ion detector and compares it with a predetermined threshold in a comparator to generate a pulse signal with a predetermined peak value, and obtains the count value as the detection value. This detection method is advantageous in terms of signal-to-noise ratio in low concentration ranges because it is not affected by electrical noise smaller than the predetermined threshold. However, due to constraints such as the pulse width (usually about 10 nsec) of the minute current pulse signal output from the ion detector and the dead time in the downstream waveform processing circuit, counting errors occur when a large number of ions enter the ion detector. Therefore, the dynamic range in high concentration ranges is limited.
[0005] For example, mass analyzers used in liquid chromatography mass spectrometry (LC-MS) systems are required to have high quantitative performance for trace components. Such mass analyzers typically use pulse counting, which provides excellent ion detection accuracy in low-concentration regions. However, the narrow dynamic range of typical pulse counting methods presents a problem. For this reason, technologies have been proposed to expand the dynamic range in high-concentration regions when using pulse counting.
[0006] Patent Document 1 discloses a method for expanding the dynamic range in a high-concentration region in a pulse count detection system by correcting the pulse count value using a dead time correction coefficient according to the count rate.
[0007] In the ion detection system disclosed in Patent Document 2, an amplifier for pulse count detection and an amplifier for analog detection are connected in parallel to the current signal output terminal of a secondary electron multiplier, and pulse count detection and analog detection are performed in parallel regardless of the magnitude of the output of the secondary electron multiplier. When the amount of ions is small and the output voltage of the amplifier for analog detection is below a predetermined value, the detection value using the pulse count detection method is used. On the other hand, when the amount of ions increases and the output voltage of the amplifier for analog detection exceeds the predetermined value, the detection value using the analog detection method is used. The ratio between the analog detection value and the pulse count value is stored in advance inside the CPU as a conversion coefficient, and the analog detection value is converted into a pulse count value using this conversion coefficient. [Prior art documents] [Patent documents]
[0008] [Patent Document 1] U.S. Patent No. 9,991,104 [Patent Document 2] Japanese Patent Application Publication No. 6-181046 [Patent Document 3] Japanese Patent Application Laid-Open No. 2011-14481 [Patent Document 4] US Patent Application Publication No. 20150325420 Summary of the Invention [Problem to be solved by the invention]
[0009] According to the method described in Patent Document 1, it is possible to expand the dynamic range of the pulse counting method even when the amount of ions incident on the ion detector increases to a certain extent. However, if the amount of ions incident on the ion detector increases further, the multiple pulse signals output from the ion detector become completely inseparable in the time direction, and the pulse count value becomes saturated, correction is no longer possible. In other words, the expansion of the dynamic range in high-concentration regions using this method is restricted by the fundamental limitations of pulse count detection.
[0010] In contrast, in the method described in Patent Document 2, when the amount of ions incident on the ion detector is large, the detection value obtained by the pulse count detection method is not substantially used. Therefore, unlike the method described in Patent Document 1, there is no influence of saturation of the pulse count value. However, this method has the following problems.
[0011] The gain of an ion detector, such as a secondary electron multiplier, depends on the detector voltage applied to the ion detector. As disclosed in Patent Document 3, in pulse count detection, the detector voltage is generally set within a plateau region where the pulse count value is generally flat relative to changes in the detector voltage. On the other hand, in analog detection, the higher the gain of the ion detector, i.e., the higher the detector voltage, the larger the detected value, making saturation more likely to occur in the high-concentration region. Therefore, if a dynamic range in the high-concentration region needs to be maintained, it is best not to set the detector voltage too high. For this reason, the detector voltage can be changed as needed by manual adjustment by the user or automatic tuning. If the ion detector gain changes due to a change in the detector voltage, it becomes impossible to accurately calculate a pulse count value from the analog detected value, even using the conversion coefficient stored in the CPU.
[0012] The present invention has been made to solve these problems, and one of its main objects is to provide a mass spectrometer that can accurately detect the amount of ions over a wide concentration range, from low to high, even when the detector voltage applied to the ion detector is changed. [Means for solving the problem]
[0013] In order to solve the above problems, one aspect of the mass spectrometer according to the present invention is to an ion detector that generates a current pulse signal corresponding to incident ions with a gain corresponding to the detector voltage; a voltage generating unit that applies a detector voltage to the ion detector; a branching unit for branching a voltage pulse signal based on a current pulse signal extracted from an anode of the ion detector into a plurality of signals; a pulse counting unit that detects one of the voltage pulse signals branched by the branching unit using a pulse counting method and outputs a pulse count value; an analog detection unit that detects the other of the voltage pulse signals branched by the branch unit using an analog detection method and outputs an analog detection value; a conversion information storage unit that stores conversion information indicating a correspondence relationship between a predetermined pulse count value in a state where the pulse count value by the pulse count unit is non-saturated under a detector voltage applied to the ion detector from the voltage generation unit during measurement and an analog detection value at that time; a converted count value calculation unit that, when either the pulse count value by the pulse count unit or the analog detection value by the analog detection unit obtained by measurement is greater than a predetermined value, calculates a converted count value as a detection value in place of the pulse count value by the pulse count unit, using the analog detection value at that time and the conversion information stored in the conversion information storage unit; Equipped with. [Effects of the Invention]
[0014] According to the above-described aspects of the mass spectrometer of the present invention, even if the detector voltage is changed to change the gain of the ion detector, the converted count value can be calculated with high accuracy from the analog detection value using the conversion information corresponding to the changed detector voltage. As a result, even if the detector voltage is changed, ions can be detected with high accuracy over a wide concentration range from low to high concentrations, and a detection value corresponding to the amount of ions can be obtained. [Brief explanation of the drawings]
[0015] [Figure 1] 1 is a schematic block diagram of a mass spectrometer according to an embodiment of the present invention; [Figure 2] FIG. 2 is a schematic block diagram of an ion detector and a detection value generating unit in the mass spectrometer of the present embodiment. [Figure 3] FIG. 10 is a graph showing an example of the relationship between the amount of ions incident on an ion detector and the pulse count value and analog detection value, based on an actual measurement example. [Figure 4] FIG. 3 is a diagram showing the relationship between the amount of ions incident on the ion detector and the pulse count value in the mass spectrometer of the present embodiment. [Figure 5] FIG. 10 is a diagram showing an example of the relationship between a detector voltage and a pulse count value. [Figure 6] FIG. 10 is a diagram showing the relationship between a plateau region and a range in which a desired upper limit of the dynamic range can be obtained. [Figure 7] 5A and 5B are diagrams showing the relationship between the detector voltage and the plateau region corresponding to each mode in the mass spectrometer of the present embodiment. [Figure 8] FIG. 10 is a diagram showing an example of each mode, a detector voltage, and a conversion coefficient. [Figure 9] FIG. 1 shows an example of a chromatogram measured by LC-MS using the mass spectrometer of this embodiment. [Figure 10] FIG. 2 is a diagram showing an example of an ideal chromatographic peak obtained by LC-MS using the mass spectrometer of the present embodiment. [Figure 11] FIG. 10 is a diagram showing an example of a chromatographic peak obtained by LC-MS using the mass spectrometer of the present embodiment when the ion detector is deteriorated. [Figure 12] FIG. 10 is a schematic block diagram of an ion detector and a detection value generating unit in a mass spectrometer according to a modified example. [Figure 13] FIG. 10 is a diagram showing an example of a chromatographic peak obtained by LC-MS using a mass spectrometer according to a modified example. DETAILED DESCRIPTION OF THE INVENTION
[0016] [Mass spectrometer of one embodiment] A mass spectrometer according to an embodiment of the present invention will now be described with reference to the accompanying drawings.
[0017] FIG. 1 is a schematic block diagram of the mass spectrometer of this embodiment, and FIG. 2 is a schematic block diagram of the detection value generating unit 4 in FIG. As shown in FIG. 1, this mass spectrometer includes an ion source 1, a mass separator 2, an ion detector 3, a detection value generator 4, a data processor 5, a voltage generator 6, a controller 7, an operation unit 8, and a display unit 9.
[0018] The ion source 1 ionizes the components (compounds) in the introduced sample. There is no particular restriction on the ionization method. If the sample is a liquid, for example, electrospray ionization or atmospheric pressure chemical ionization can be used. If the sample is a gas, electron ionization or chemical ionization can be used. In addition, ionization methods using laser light or electron beams, such as matrix-assisted laser desorption ionization, can also be used.
[0019] Ions derived from sample components generated in the ion source 1 are introduced into the mass separator 2, where the ions are separated according to their mass-to-charge ratio (m / z). The type and configuration of the mass separator 2 are not particularly limited. For example, a quadrupole mass filter, a time-of-flight mass separator, or an ion trap can be used as the mass separator 2. The mass separator 2 may also have the function of dissociating ions to generate product ions. That is, the mass separator 2 may have a triple quadrupole configuration including a collision cell that dissociates ions by collision-induced dissociation or the like, or a configuration that performs both ion selection and ion dissociation using an ion trap.
[0020] The ions separated according to m / z in the mass separator 2 are incident on the ion detector 3. The ion detector 3 outputs a minute current pulse signal corresponding to each incident ion. The ion detector 3 may typically include a conversion dynode and a secondary electron multiplier.
[0021] As will be described in detail later, the detection value generation unit 4 performs predetermined processing on the minute pulse signal output from the ion detector 3 to generate a detection value corresponding to the amount of ions incident on the ion detector 3. The data processing unit 5 receives the detection value from the detection value generation unit 4 and performs predetermined data processing. For example, the data processing unit 5 can create a mass spectrum over a predetermined m / z range based on the detection values obtained when the mass separation unit 2 performs an m / z scan over a predetermined m / z range.
[0022] The voltage generator 6 performs the above-described mass analysis operation by applying predetermined voltages to the ion source 1, mass separator 2, and ion detector 3 under the control of the controller 7. The controller 7 controls the mass analysis, and includes characteristic functional blocks such as a mode selection receiver 70, a parameter adjustment controller 71, and a conversion coefficient determiner 72.
[0023] The data processing unit 5 and the control unit 7 use a personal computer as a hardware resource, and the functional blocks included in the data processing unit 5 and the control unit 7 can be realized by executing dedicated control and processing software installed on the personal computer.
[0024] 2, the detection value generation unit 4 includes a transimpedance amplifier 40, a signal branching unit 41, an integration circuit 42, a comparator 43, an analog-to-digital conversion unit (ADC) 44, a counting unit 45, and a dynamic range (DR) expansion processing unit 46. The DR expansion processing unit 46 includes, as functional blocks, a conversion coefficient storage unit 461, a converted count value calculation unit 462, and a detection value selection unit 463.
[0025] The gain of the secondary electron multiplier that constitutes the ion detector 3 depends on the detector voltage Vd applied from the voltage generating unit 6. Usually, this detector voltage Vd is set to a gain that allows a voltage pulse signal derived from a minute current pulse signal output from the anode 30 of the ion detector 3 to be appropriately detected by a pulse count detection method. This will be described in detail later.
[0026] When ions are incident on the ion detector 3 while this detector voltage is being applied, a minute current pulse signal is output from the anode 30 in response. This current pulse signal is converted into a voltage pulse signal by the transimpedance amplifier 40 through current / voltage conversion. The resistance value that determines the gain of the transimpedance amplifier 40 can be appropriately selected within a range of approximately 1 kΩ to 50 kΩ. Since the pulse width of the current pulse signal output from the secondary electron multiplier is typically narrow, approximately 5 to 10 nsec, it is advisable to select a resistance value that amplifies this high-speed pulse signal waveform without dulling it as much as possible, in order to ensure accurate pulse counting in the subsequent stage. Note that an existing transimpedance amplifier such as that described in Patent Document 4 can be used as the transimpedance amplifier 40.
[0027] The voltage pulse signal output from the transimpedance amplifier 40 is branched into two systems by the signal branching unit 41. One is input to one input terminal of the comparator 43, and the other is input to the integrating circuit 42. A predetermined threshold voltage Vth is input to the other input terminal of the comparator 43. The comparator 43 compares the voltage pulse signal with the threshold voltage Vth and outputs a pulse signal with a predetermined peak value when the former is equal to or greater than the latter. The peak value of the voltage pulse signal input to the comparator 43 varies, but if the peak value exceeds the threshold voltage Vth, the output of the comparator 43 is a binary signal with a constant peak value, i.e., a digital signal. This binary pulse signal is input to the counter 45, which counts the pulse signals input within a unit time and outputs a count value. The counter 45 is reset every time a unit time elapses. This count value is the detection value obtained by the pulse count detection method.
[0028] On the other hand, the integrating circuit 42 integrates and amplifies the input voltage pulse signal over a unit time, thereby outputting an analog voltage value. This analog voltage value is also reset every time a unit time elapses. The analog voltage value output from the integrating circuit 42 is digitized by an analog-to-digital converter 44. The analog voltage value is a detection value obtained by an analog detection method, but here the digitized value of this analog voltage value is also referred to as the analog detection value.
[0029] The upper limit of the output voltage of the integrating circuit 42 is limited by the power supply voltage of the amplifier constituting the integrating circuit 42, and this upper limit is usually in the range of about 3.3 V to 15 V. Therefore, the gain of the integrating circuit 42 can be appropriately designed so that the output voltage of the integrating circuit 42 does not saturate at the desired ion amount. As an example, in the mass spectrometer of this embodiment, an operational amplifier with an output voltage of 5 V max is used for the integrating circuit 42, and a voltage of 3e8 (=3×10 8 The gain of the integrating circuit 42 is determined so that the output voltage is 3 V at an ion amount of 100 cps.
[0030] As described above, in the mass spectrometer of this embodiment, detection operations using the analog detection method and the pulse count detection method are carried out in parallel based on the minute current pulse signal output from the single anode 30 in the ion detector 3, and both detection values, i.e., the pulse count value and the analog detection value, are obtained.
[0031] 2, in principle, it is possible to perform signal branching at the input stage of the transimpedance amplifier 40, but in that case, the output current from the ion detector 3 is divided into the pulse count side and the analog detection side, which is disadvantageous in terms of the S / N ratio, etc. In contrast, in this embodiment, the current signal is converted into a voltage signal in the transimpedance amplifier 40, and then the voltage signal is branched, making it possible to avoid a deterioration in signal quality due to branching.
[0032] The DR expansion processing unit 46 uses the two detection values described above to obtain a detection value with an expanded dynamic range compared to the pulse count detection method. The principle of this DR expansion will now be described.
[0033] 3 is a schematic diagram showing an example of the relationship between the amount of ions incident on the ion detector 3 and the pulse count value and analog detection value. As shown in FIG. 3(A), in this example, the relationship between the amount of ions and the pulse count value is nearly linear in the range of 1e7 [cps] or less, but ion counting begins to drop when the rate exceeds 1e7 [cps]. In contrast, as shown in FIG. 3(B), the relationship between the amount of ions and the analog detection value is nearly linear up to an ion amount corresponding to 3e8 [cps], at which point the ion detector 3 itself becomes saturated.
[0034] As already mentioned, when the ion amount is small, the pulse count detection method has a better signal-to-noise ratio. Therefore, in the mass spectrometer of this embodiment, as shown in FIG. 4, the pulse count value is used as is within the ion amount range where accurate pulse counting is possible (1e7 [cps] or less), and for ion amounts above that, analog detection values are used to expand the dynamic range of the detection values. In the ion amount range where analog detection values are used, a converted count value is used that is obtained by multiplying the actual analog detection value by a conversion coefficient previously obtained by measuring an ion amount where the pulse count does not saturate (i.e., where no counting losses occur). For example, when the pulse count value is 1e7 [cps], ] If the analog detection value at this time is 0.1V, the conversion factor is 1e7[cps] / 0.1[V]=1e6.
[0035] In the mass spectrometer of this embodiment, a conversion factor calculated by the conversion factor determination unit 72 of the control unit 7 based on a measurement of a standard sample executed, for example, when tuning the instrument as described below, is stored in the conversion factor storage unit 461. However, this conversion factor can also be experimentally determined by the instrument manufacturer and stored in the conversion factor storage unit 461. In that case, the conversion factor determination unit 72 is not necessary.
[0036] During sample measurement, when ions enter the ion detector 3, the analog detection value and the pulse count value are input in parallel to the DR enlargement processing unit 46 as described above. The converted count value calculation unit 462 determines whether the pulse count value (or the analog detection value) is equal to or greater than a predetermined value. If the pulse count value (or the analog detection value) is equal to or greater than the predetermined value, the converted count value is obtained by multiplying the analog detection value by a conversion coefficient read from the conversion coefficient storage unit 461. If the pulse count value (or the analog detection value) is less than the predetermined value, the detection value selection unit 463 outputs the pulse count value as is as the detection value; otherwise, the converted count value calculated by the converted count value calculation unit 462 is output as the detection value instead of the pulse count value.
[0037] As a result, as shown in FIG. 4, depending on the amount of ions incident on the ion detector 3, either a pulse count value or a converted count value calculated using an analog detection value and a conversion coefficient is selectively output as the detection value.
[0038] The dynamic range of the detection value at this time is limited by saturation of the output current of the ion detector 3. This saturation of the ion detector 3 is more likely to occur as the gain of the ion detector 3, i.e., the detector voltage Vd applied from the voltage generator 6, increases. Therefore, from the perspective of expanding the upper limit of the dynamic range, a lower detector voltage is preferable. On the other hand, to perform pulse counting without counting losses, the gain of the ion detector 3 must be set so that the voltage pulse signal derived from the current pulse signal output from the ion detector 3 reliably exceeds the threshold voltage Vth, and to achieve this, the detector voltage must be set relatively high. In other words, there is a trade-off between preventing pulse count losses (i.e., ensuring sensitivity) and expanding the dynamic range when setting the detector voltage of the ion detector 3.
[0039] Figure 5 shows an example of the relationship between detector voltage and pulse count value, known as a plateau curve. In general, when tuning a mass spectrometer, these characteristics are investigated and the detector voltage is set in the plateau region where the pulse count value is roughly flat. Furthermore, since a lower detector voltage is better for extending the life of the secondary electron multiplier, the detector voltage is usually set to a relatively low value within the range of the plateau region (for example, the value of point U shown in Figure 5). Determined However, it is unclear whether the desired dynamic range can be obtained at the detector voltage set at this time, and no consideration is given to this.
[0040] In contrast, in the mass spectrometer of this embodiment, a limit (upper limit) is set on the detector voltage so that the ion detector 3 does not saturate at the upper limit of the desired dynamic range. For example, if an ion amount equivalent to 3e8 [cps] is desired as the upper limit of the dynamic range, the parameter adjustment control unit 71 internally stores a corresponding analog detection value (e.g., 3 V), and sets the detector voltage within the plateau region so that the ratio of the pulse count value to the analog detection value when the detector voltage is changed falls within a predetermined range (e.g., 3e8 [cps] / 3 [V] or less) (see FIG. 6). This ensures that the upper limit of the dynamic range is set to the desired value.
[0041] However, depending on the characteristics of the secondary electron multiplier, it may not be possible to set the detector voltage under the above-mentioned conditions. Specifically, for example, if the plateau curve shifts to a higher voltage due to individual differences in the device, such as a high noise level, the voltage corresponding to the upper limit of the desired dynamic range may fall below the lower limit of the plateau region. In this case, if the detector voltage is set within the plateau region to perform counting without missing counts, the upper limit of the dynamic range will be lower than the desired value. Therefore, the mass spectrometer of this embodiment provides three detector operating modes with different detector voltages: sensitivity-priority mode, balance mode, and dynamic-range-priority mode, and the user can select one of them in advance.
[0042] FIG. 7 is a diagram showing detector voltage values corresponding to three detector operation modes on a plateau curve. FIG. 8 is a diagram showing an example of detector voltage values and conversion factors corresponding to three detector operation modes. As shown in FIG. 7, detector voltage V2 corresponding to the balance mode is near the lower limit of the plateau region, and detector voltage V1 corresponding to the sensitivity priority mode is larger than V2 and falls within the plateau region. On the other hand, detector voltage V3 corresponding to the dynamic range priority mode is smaller than V2 and falls outside the plateau region.
[0043] In the plateau region, even if the detector voltage increases, the pulse count value hardly increases, while the analog detection value increases, so the higher the detector voltage is set within the plateau region, the narrower the dynamic range of the detector. Therefore, although the dynamic range in the sensitivity priority mode is slightly narrower than in other modes, a voltage pulse signal that reliably exceeds the threshold voltage Vth is obtained in response to ions incident on the ion detector 3, thereby achieving high sensitivity. Conversely, in the dynamic range priority mode, there are cases in which the voltage pulse signal does not exceed the threshold voltage Vth even when ions are incident on the ion detector 3, which is disadvantageous in terms of sensitivity, but the upper limit of the dynamic range can be expanded compared to other modes.
[0044] The conversion coefficient determination unit 72 determines the conversion coefficients corresponding to the three detector operation modes described above, for example, when tuning the device, and the conversion coefficient storage unit 461 stores the conversion coefficients corresponding to the modes. When the user performs a predetermined operation on the operation unit 8 during measurement, the mode selection reception unit 70 displays a screen on the display unit 9 that prompts the user to select one of the three detector operation modes described above. When the user views this screen and performs an operation to select one using the operation unit 8, the mode selection reception unit 70 determines the detector voltage in response to the operation. Upon receiving a detector voltage instruction from the control unit 7, the voltage generation unit 6 generates a DC voltage according to the instruction and applies it to the ion detector 3 as the detector voltage Vd. This determines the gain of the ion detector 3.
[0045] The control unit 7 also sends information about the selected mode to the DR enlargement processing unit 46. As a result, the converted count value calculation unit 462 obtains a conversion coefficient corresponding to the specified mode from the conversion coefficient storage unit 461 and calculates a converted count value by multiplying the analog detection value obtained during measurement by that conversion coefficient. In this way, regardless of which detector operation mode is selected, a highly accurate converted count value can be calculated from the analog detection value using the conversion coefficient corresponding to the selected mode.
[0046] In the mass spectrometer of this embodiment, since the conversion coefficient can be stored in the conversion coefficient storage unit 461 at any time point before the measurement is executed, as described above, the device manufacturer may experimentally obtain the conversion coefficient and store it in the conversion coefficient storage unit 461 before providing this device to the user. However, the characteristics of the ion detector 3 and the like may change with the use of the device, and accordingly, the appropriate conversion coefficient may also change. Therefore, when adjusting the voltages applied to, for example, a plurality of ion transport optical systems, a quadrupole mass filter, the ion detector 3, etc. in the device to an optimal state, the conversion coefficient in the state after the adjustment is obtained and stored in the conversion coefficient storage unit 461 for use in subsequent measurements.
[0047] Specifically, when the user performs a predetermined operation from the operation unit 8 at an appropriate time point, the parameter adjustment control unit 71 executes an auto-tuning operation for adjusting parameters such as the applied voltage to each predetermined part while repeating the measurement using the standard sample. This auto-tuning operation may be automatically performed, for example, when the device is started up, or may be automatically performed at a specified timing, such as every time the device is used for a predetermined time.
[0048] During the auto-tuning operation, the parameter adjustment control unit 71 obtains the pulse count value for the standard sample while changing the detector voltage applied to the ion detector 3 by a predetermined step width, thereby obtaining a plateau curve. Then, the range of the plateau region is determined from the obtained plateau curve. For example, the lower limit of the plateau region is defined as V2, V1 (> V2) is defined within the range where the desired dynamic range can be obtained, and V3 (< V2) is defined at the position of the count value that is a predetermined ratio lower than the pulse count value in the plateau region. In this way, the detector voltage corresponding to each detector operation mode can be determined. Also, the conversion coefficient determination unit 72 can determine the conversion coefficient from the determined detector voltages and pulse count values.
[0049] Note that, although the plateau curve may be obtained and the detector voltage and conversion factor may be recalculated each time the device is retuned, it is not necessary to recalculate them each time the device is tuned. For example, the detector voltage and conversion factor may be recalculated every time the device is tuned a predetermined number of times, or the detector voltage and conversion factor may be recalculated if the device usage time exceeds a specified time since the last time the detector voltage and conversion factor were reset.
[0050] [Measurement example] 9 shows an example of a measured chromatogram obtained when a high-concentration liquid sample is repeatedly introduced into the mass spectrometer of this embodiment by flow injection analysis 10 times. The sample concentration is such that the pulse count value is saturated. As shown in Figure 9, with the conventional pulse count detection method, the detection value is saturated at an ion amount of approximately 5e7 [cps]. In contrast, with the method used in the mass spectrometer of this embodiment, it can be seen that ion amounts exceeding 2e8 [cps] are successfully detected. In this way, the mass spectrometer of this embodiment can expand the dynamic range of detection values in the high-concentration region.
[0051] [Issues when ion detectors deteriorate] In the mass spectrometer of the above embodiment, the threshold for switching detection values is set to 1e7 [cps] in terms of ion amount. When the pulse count value is 1e7 [cps] or less, the pulse count value is used as is. When the pulse count value exceeds 1e7 [cps], the converted count value is used. FIG. 10 shows a chromatographic peak when a sample with an ion amount exceeding 1e7 [cps] is introduced. If the conversion coefficient is set appropriately, as shown in FIG. 10, the pulse count value and the converted count value will generally smoothly connect. This provides good quantitative accuracy when calculating component concentrations using, for example, peak area values.
[0052] However, as the secondary electron multiplier deteriorates over time, the output current signal relative to the specified ion amount decreases, potentially resulting in an inappropriate conversion factor. If the converted count value is calculated using a conversion factor obtained before the secondary electron multiplier deteriorated, the chromatographic peak will be distorted at the boundary between the pulse count value and the converted count value, as shown in Figure 11. This distortion reduces the quantitative accuracy of the component concentration.
[0053] As described above, when the conversion factor is recalculated and the stored information is updated through instrument tuning, the distortion of the chromatographic peaks described above can be avoided by increasing the frequency of the updates. However, since the standard sample is repeatedly measured during instrument tuning, contamination of the ion transport optics and other components is likely to occur. Furthermore, frequent tuning increases the burden on the user and is undesirable in terms of the operational efficiency of the instrument. Therefore, in order to always calculate the converted count value using the latest conversion factor without increasing the frequency of instrument tuning, the following modified mass spectrometer configuration can be used.
[0054] [Variations] 12 is a schematic block diagram of an ion detector and a detection value generating unit in a mass spectrometer according to a modified example. The same components as those shown in FIG. 2 are designated by the same reference numerals, and detailed descriptions thereof will be omitted. In this mass spectrometer, the DR expansion processing unit 46 includes a conversion coefficient calculation unit 460 as a functional block. In the mass spectrometer of the above embodiment, conversion coefficients are stored in the conversion coefficient storage unit 461 at least at the stage when a measurement of a target sample is performed. In contrast, in this mass spectrometer, when a measurement of a target sample is performed, the conversion coefficient calculation unit 460 calculates a conversion coefficient using data of acquired data whose ion intensity is equal to or less than a predetermined value, and stores the obtained conversion coefficient in the conversion coefficient storage unit 461. The converted count value calculation unit 462 then calculates a converted count value from the pulse count value based on the conversion coefficient. In other words, the conversion coefficient is determined while the measurement is being performed, and the converted count value is calculated using the conversion coefficient.
[0055] For example, as shown in FIG. 11, the ion intensity (pulse count value) increases over time during measurement, and when the pulse count reaches a predetermined value (data point P in FIG. 11) below 1e7 [cps] where it is not saturated, the conversion coefficient calculation unit 460 acquires the pulse count value and analog detection value at that time. Then, by calculating the ratio between them, the latest conversion coefficient is obtained. The conversion coefficient obtained in this way is a more accurate conversion coefficient when the data was acquired, that is, when the ion detector 3 is in a deteriorated state at that time. This conversion coefficient is immediately stored in the conversion coefficient storage unit 461, and when the actually measured ion intensity exceeds 1e7 [cps] as shown in FIG. 11, the converted count value obtained from the analog detection value using this conversion coefficient is used to calculate the latest conversion coefficient. value The conversion factor is adopted as the threshold voltage. Since the detector voltage is usually not changed during measurement, the conversion factor used is the conversion factor under the detector voltage applied to the ion detector 3 when the analog detection value to be converted is obtained. This allows for appropriate conversion that reflects the deterioration state of the ion detector 3, so that the chromatographic peaks are generally smoothly connected above and below the threshold value of 1e7 [cps], as shown in Figure 13. In other words, distortion of the chromatographic peaks is reduced.
[0056] In the above description, the conversion factor is calculated substantially in real time during measurement, and the converted count value is calculated using the conversion factor. Therefore, for example, when a chromatogram is displayed on the screen of the display unit 9 in almost real time during measurement, there is an advantage that a chromatographic peak corrected using an appropriate conversion factor and substantially undistorted can be displayed.
[0057] Alternatively, instead of performing the conversion process during measurement, a conversion factor can be calculated by post-processing after the measurement is completed, and the converted count value can be calculated from the analog detection value using the conversion factor, replacing the data constituting the chromatographic peak. In this case, the conversion factor can be calculated from a large number of data points falling within the range Q shown in FIG. 11 where the ion intensity is 1e7 [cps] or less. This has the advantage that the accuracy of the conversion factor itself can be improved compared to when the conversion factor is calculated in approximately real time as described above, and the accuracy of the conversion using the conversion factor, i.e., the accuracy of the resulting converted count value, can be improved.
[0058] It should be noted that the mass spectrometer of the above embodiment and modified example is merely an example of the present invention, and it goes without saying that any appropriate modifications, alterations, additions, etc. made within the spirit of the present invention will also fall within the scope of the claims of the present application.
[0059] [Various aspects] It will be appreciated by those skilled in the art that the exemplary embodiments described above are examples of the following aspects.
[0060] (Item 1) One aspect of the mass spectrometer according to the present invention is an ion detector that generates a current pulse signal corresponding to incident ions with a gain corresponding to the detector voltage; a voltage generating unit that applies a detector voltage to the ion detector; a branching unit for branching a voltage pulse signal based on a current pulse signal extracted from an anode of the ion detector into a plurality of signals; a pulse counting unit that detects one of the voltage pulse signals branched by the branching unit using a pulse counting method and outputs a pulse count value; an analog detection unit that detects the other of the voltage pulse signals branched by the branch unit using an analog detection method and outputs an analog detection value; a conversion information storage unit that stores conversion information indicating a correspondence relationship between a predetermined pulse count value in a state where the pulse count value by the pulse count unit is non-saturated under a detector voltage applied to the ion detector from the voltage generation unit during measurement and an analog detection value at that time; a converted count value calculation unit that, when either the pulse count value by the pulse count unit or the analog detection value by the analog detection unit obtained by measurement is greater than a predetermined value, calculates a converted count value as a detection value in place of the pulse count value by the pulse count unit, using the analog detection value at that time and the conversion information stored in the conversion information storage unit; Equipped with.
[0061] According to the mass spectrometer described in paragraph 1, even if the detector voltage is changed to change the gain of the ion detector, the converted count value can be calculated with high accuracy from the analog detection value using the conversion information corresponding to the changed detector voltage. As a result, even if the detector voltage is changed, ions can be detected with high accuracy over a wide concentration range from low to high concentrations, and a detection value corresponding to the amount of ions can be obtained.
[0062] (Item 2) In the mass spectrometer according to item 1, the conversion information storage unit holds a plurality of pieces of conversion information respectively corresponding to a plurality of different detector voltage values; The conversion count value calculation unit From the voltage generating unit Conversion information corresponding to one of the plurality of detector voltage values applied to the ion detector can be selectively acquired from the conversion information storage unit, and the acquired conversion information can be used to calculate the converted count value.
[0063] Because the gain of an ion detector depends on the detector voltage, the saturation of the pulse count value in the pulse count detection method and the saturation of the output of the ion detector itself depend on the detector voltage. Therefore, there may be cases where the detector voltage needs to be changed by intentional adjustment or by automatic adjustment. When the gain of the ion detector changes, the relationship between the pulse count value and the analog detection value also changes, and therefore the conversion factor also changes. In contrast, the mass spectrometer described in paragraph 2 provides conversion factors corresponding to each of the multiple selectable detector voltage values, allowing the converted count value to be accurately determined using the appropriate conversion factor corresponding to the detector voltage at that time.
[0064] (Item 3) The mass spectrometer according to item 2, a mode selection section that displays a plurality of selectable modes including a sensitivity priority mode and a dynamic range priority mode and accepts a user's selection of the mode; , further comprising: The voltage generating unit a function of changing a detector voltage to be applied to the ion detector in accordance with the mode selected by the mode selection unit, and when the dynamic range priority mode is selected, a detector voltage having a value lower than that when the sensitivity priority mode is selected is applied; Applying before The converted count value calculation unit may acquire, from the conversion information storage unit, conversion information corresponding to the detector voltage according to the mode selected by the mode selection unit, and calculate the converted count value.
[0065] In the mass spectrometer described in paragraph 3, when sensitivity priority mode is selected, the detector voltage is set relatively high, making it easier for analog detection values to saturate in high-concentration regions. However, the increased gain of the ion detector reduces pulse count losses in low-concentration regions, achieving high detection sensitivity. On the other hand, when dynamic range priority mode is selected, saturation of analog detection values is less likely to occur in high-concentration regions, expanding the dynamic range of detection values. Thus, with the mass spectrometer described in paragraph 3, the user can select between measurements with high detection sensitivity and measurements with a wide dynamic range, depending on the purpose of the measurement, the concentration of the sample to be measured, and other factors.
[0066] (Item 4) The mass spectrometer according to any one of items 1 to 3, a saturation reference value storage unit that stores a saturation reference value associated with an analog detection value when saturation occurs in the output of the ion detector; , further comprising: The voltage generating unit A detector voltage applied to the ion detector is adjusted based on a pulse count value so that the analog detection value output from the analog detection unit does not exceed the saturation reference value. Set up It can be said that
[0067] According to the mass spectrometer described in item 4, the detector voltage can be adjusted so that the desired upper limit of the dynamic range is reliably achieved.
[0068] (Item 5) The mass spectrometer according to item 1, a conversion information acquisition unit that, when the pulse count value by the pulse count unit is in a non-saturated state and both the pulse count value and the corresponding analog detection value are obtained, calculates conversion information using the pulse count value and the analog detection value and stores the conversion information in the conversion information storage unit; The device may further include:
[0069] (Item 6) In the mass spectrometer according to item 5, the conversion information acquisition unit calculates conversion information during measurement and stores the calculated conversion information in the conversion information storage unit; The converted count value calculation unit can be configured to output a converted count value calculated using the analog detection value at that time and the conversion information stored in the conversion information storage unit as a detection value in place of the pulse count value by the pulse count unit if either the pulse count value by the pulse count unit or the analog detection value by the analog detection unit obtained by the measurement is greater than a predetermined value after the conversion information is stored in the conversion information storage unit during the execution of the measurement.
[0070] In the mass spectrometer described in paragraph 6, the converted count value is calculated using conversion information calculated based on data acquired during measurement, rather than conversion information prepared before the measurement. Therefore, with the mass spectrometer described in paragraph 6, the conversion information reflects the state of the ion detector at the time of measurement, i.e., the detector gain corresponding to the state of deterioration and the detector voltage, allowing for more accurate calculation of the converted count value. This improves the connection of the curves at the boundary between the detection values based on the pulse count value and the detection values based on the converted count value, for example, when creating a chromatogram in which ion intensity changes over time, improving the quantitative accuracy when calculating component concentrations based on the areas of chromatographic peaks.
[0071] (Item 7) In addition, in the mass spectrometer according to item 5, after the measurement is performed, the conversion information acquisition unit calculates conversion information using the pulse count value and the analog detection value obtained in the measurement and stores the conversion information in the conversion information storage unit; The converted count value calculation unit can be configured to calculate a converted count value using the analog detection value at that time and the conversion information stored in the conversion information storage unit when either the pulse count value obtained by measurement from the pulse count unit or the analog detection value obtained by the analog detection unit is greater than a predetermined value after the conversion information is stored in the conversion information storage unit.
[0072] Unlike the mass spectrometer described in paragraph 6, the mass spectrometer described in paragraph 7 calculates conversion information based on data acquired during measurement after the measurement, rather than during the measurement, and uses the conversion information to calculate the converted count value. Therefore, even in the mass spectrometer described in paragraph 7, the conversion information reflects the state of the ion detector at the time of the measurement, i.e., the detector gain corresponding to the state of deterioration and the detector voltage, allowing for more accurate calculation of the converted count value. This improves the connection of the curves at the boundary between the detection value based on the pulse count value and the detection value based on the converted count value, for example, when creating a chromatogram in which ion intensity changes over time, improving the quantitative accuracy when calculating component concentrations based on the area of the chromatographic peak.
[0073] Furthermore, according to the mass spectrometer described in paragraph 7, it is easy to calculate the conversion information using a large amount of data obtained when the pulse count value by the pulse counting unit is not saturated, so the converted count value can be determined more accurately and quantitativeness is further improved. [Explanation of symbols]
[0074] 1...Ion source 2...Mass separation section 3...Ion detector 30...Anode 4...Detection value generation unit 40...Transimpedance amplifier 41...Signal branch section 42...Integrator circuit 43...Comparator 44...Analog-digital conversion section 45...Counting section 46...DR expansion processing section 461...Conversion coefficient memory section 462...Conversion count value calculation unit 463...Detection value selection unit 5...Data processing section 6...Voltage generating section 7...Control unit 70...Mode selection reception section 71...Parameter adjustment control section 72...Conversion coefficient determination section 8...Operation unit 9…Display section
Claims
1. an ion detector that generates a current pulse signal corresponding to incident ions with a gain corresponding to the detector voltage; a voltage generating unit that applies a detector voltage to the ion detector; a branching unit for branching a voltage pulse signal based on a current pulse signal extracted from an anode of the ion detector into a plurality of signals; a pulse counting unit that detects one of the voltage pulse signals branched by the branching unit using a pulse counting method and outputs a pulse count value; an analog detection unit that detects the other of the voltage pulse signals branched by the branch unit using an analog detection method and outputs an analog detection value; a conversion information storage unit that stores conversion information indicating a correspondence relationship between a predetermined pulse count value in a state where the pulse count value by the pulse count unit is non-saturated under a detector voltage applied to the ion detector from the voltage generation unit during measurement and an analog detection value at that time; a converted count value calculation unit that, when either the pulse count value by the pulse count unit or the analog detection value by the analog detection unit obtained by measurement is greater than a predetermined value, calculates a converted count value as a detection value in place of the pulse count value by the pulse count unit, using the analog detection value at that time and the conversion information stored in the conversion information storage unit; the conversion information storage unit holds a plurality of pieces of conversion information corresponding to a plurality of mutually different detector voltage values, and the converted count value calculation unit selectively obtains, from the conversion information storage unit, conversion information corresponding to one detector voltage value among the plurality of detector voltage values applied to the ion detector from the voltage generation unit during measurement, and calculates the converted count value using the obtained conversion information.
2. a mode selection unit that displays a plurality of modes including a sensitivity priority mode and a dynamic range priority mode in a selectable manner and accepts a mode selection by a user; the voltage generating unit has a function of changing a detector voltage to be applied to the ion detector in accordance with the mode selected by the mode selecting unit, and when the dynamic range priority mode is selected, applies a detector voltage of a lower value than when the sensitivity priority mode is selected; The mass spectrometer according to claim 1 , wherein the converted count value calculation unit obtains, from the conversion information storage unit, conversion information corresponding to a detector voltage according to the mode selected by the mode selection unit, and calculates the converted count value.
3. an ion detector that generates a current pulse signal corresponding to incident ions with a gain corresponding to the detector voltage; a voltage generating unit that applies a detector voltage to the ion detector; a branching unit for branching a voltage pulse signal based on a current pulse signal extracted from an anode of the ion detector into a plurality of signals; a pulse counting unit that detects one of the voltage pulse signals branched by the branching unit using a pulse counting method and outputs a pulse count value; an analog detection unit that detects the other of the voltage pulse signals branched by the branch unit using an analog detection method and outputs an analog detection value; a conversion information storage unit that stores conversion information indicating a correspondence relationship between a predetermined pulse count value in a state where the pulse count value by the pulse count unit is non-saturated under a detector voltage applied to the ion detector from the voltage generation unit during measurement and an analog detection value at that time; a converted count value calculation unit that, when either the pulse count value by the pulse count unit or the analog detection value by the analog detection unit obtained by measurement is greater than a predetermined value, calculates a converted count value as a detection value in place of the pulse count value by the pulse count unit, using the analog detection value at that time and the conversion information stored in the conversion information storage unit; a saturation reference value storage unit that stores a saturation reference value associated with an analog detection value when saturation occurs in the output of the ion detector; wherein the voltage generating unit sets a detector voltage to be applied to the ion detector based on a pulse count value so that the analog detection value output from the analog detecting unit does not exceed the saturation reference value.
4. a conversion information acquisition unit that, when the pulse count value by the pulse count unit is in a non-saturated state and both the pulse count value and the corresponding analog detection value are obtained, calculates conversion information using the pulse count value and the analog detection value and stores the conversion information in the conversion information storage unit; The mass spectrometer according to claim 1 or 3, further comprising:
5. the conversion information acquisition unit calculates conversion information during measurement and stores the calculated conversion information in the conversion information storage unit; 5. The mass spectrometer according to claim 4, wherein, when either the pulse count value by the pulse count unit or the analog detection value by the analog detection unit obtained by the measurement is greater than a predetermined value after the conversion information is stored in the conversion information storage unit during the measurement, the converted count value calculation unit outputs the converted count value calculated using the analog detection value at that time and the conversion information stored in the conversion information storage unit as the detection value in place of the pulse count value by the pulse count unit.
6. after the measurement is performed, the conversion information acquisition unit calculates conversion information using the pulse count value and the analog detection value obtained in the measurement and stores the conversion information in the conversion information storage unit; 5. The mass spectrometer according to claim 4, wherein when either the pulse count value by the pulse count unit or the analog detection value by the analog detection unit obtained by measurement after the conversion information is stored in the conversion information storage unit is greater than a predetermined value, the converted count value calculation unit calculates the converted count value using the analog detection value at that time and the conversion information stored in the conversion information storage unit.
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