The invention relates to the technical field of mass spectrometry mass analysis, in particular to an ion resonance excitation operation method and device by applying a quadrupolar electric field combined with a dipolar electric field.
Resonance excitation techniques are widely used in mass spectrometry operations. Commonly used resonant excitation techniques are dipolar resonance excitation and quadrupolar resonance excitation. Dipolar resonance excitation is to apply a pair of reverse phase voltages on a quadrupole mass analyzer. The quadrupolar resonance excitation is applied in the same way as the main Radio Frequency (RF in short). The signal of the opposite electrode is in-phase signal, and has lower frequency and amplitude than those of the main RF. The quadrupolar excitation electric field divides the stable region formed by the main RF into islands of stability, so that the original stable region becomes an unstable region, thereby realizing ion excitation.
However, for a miniature mass spectrometer, the working pressure is higher than that of a commercial large instrument, and the resolution of the instrument is degraded under the action of the buffer gas, resulting in a lower resolution with the increase of air pressure.
In order to overcome the above technical problems, the present invention provides an ion resonance excitation operation method and device by applying a quadrupolar electric field combined with a dipolar electric field, which has better excitation efficiency and improves the resolution and sensitivity of the instrument.
In order to achieve the above object, the present invention provides an ion resonance excitation operation method by applying a quadrupolar electric field combined with a dipolar electric field for an ion trap mass analyzer, comprising:
applying a main RF to any pair of plates of the ion trap mass analyzer; and
applying a quadrupolar excitation signal to any pair of plates and applying a reverse phase dipolar excitation signal to any pair of plates.
In an alternative embodiment, the amplitude of said quadrupolar excitation signal is from 0.1% to 1.2% of the amplitude of said main RF.
In an alternative embodiment, the amplitude of said quadrupolar excitation signal is from 0.8% to 1.2% of the amplitude of said main RF.
In an alternative embodiment, the frequency of the quadrupolar excitation signal is 1/n of the frequency of the main RF, and n is an integer greater than one.
In an alternative embodiment, the frequency of the dipolar excitation signal is within +/−3 k Hz of the frequency corresponding to the unstable region generated by the quadrupolar excitation signal.
The invention also provides an ion resonance excitation operation method by applying a quadrupolar electric field combined with a dipolar electric field for a quadrupole, comprising:
applying a positive main RF to a pair of electrode rods of the quadrupole and applying a negative main RF to the other pair of electrode rods; and
applying a quadrupolar excitation signal to any pair of electrode rods and applying a reverse phase dipolar excitation signals to any pair of electrode rods.
The invention also provides an ion resonance excitation device having a quadrupolar electric field combined with a dipolar electric field, comprising:
Ion trap mass analyzer, main RF, quadrupolar excitation signal source, dipolar excitation signal source;
wherein the main RF is applied to any pair of plates of the ion trap mass analyzer; the quadrupolar excitation signal source and the dipolar excitation signal source are applied to any pair of plates of the ion trap mass analyzer, respectively.
The invention also provides an ion resonance excitation device by applying a quadrupolar electric field combined with a dipolar electric field, comprising:
quadrupole, positive main RF, negative main RF, quadrupolar excitation signal source, dipolar excitation signal source;
wherein the positive main RF is applied to a pair of electrode rods of the quadrupole, and the negative main RF is applied to the other pair of electrode rods of the quadrupole; the quadrupolar excitation signal source and the dipolar excitation signal sources are applied to any pair of electrode rods of the quadrupole, respectively.
The ion resonance excitation operation method by applying a quadrupolar electric field combined with a dipolar electric field according to the present invention is used for an ion trap mass analyzer, and the method comprises: applying a main RF to a pair of plates of the ion trap mass analyzer, and applying a quadrupolar excitation signal to any pair of plates and applying a reverse phase dipolar excitation signal to any pair of plates. The solution achieves quadrupole enhanced dipole resonance, which has higher excitation efficiency than the conventional solution, has an inhibitory effect on the peak broadening effect caused by high air pressure, improves the detection sensitivity and resolution of the mass spectrometer equipment, especially the miniature mass spectrometer, and expands the range of applications of miniature mass spectrometers. The ion resonance excitation operation method by applying a quadrupolar electric field combined with a dipolar electric field according to the present invention can also be applied to a quadrupole to improve its resolution.
The examples of the present invention are illustrated below with the aid of the drawings. Elements and features described in one drawing or one embodiment of the present invention may be combined with elements and features described in one or more other drawings or embodiments. It should be noted that for the purpose of clarity, expressions and descriptions of components or processes that are well known to those skilled in the art and are not pertinent to the present invention are omitted from the drawings and the description.
An example of the present invention provides an ion resonance excitation operation method by applying a quadrupolar electric field combined with a dipolar electric field, which is used for an ion trap mass analyzer, as shown in
101. applying a main RF to a pair of plates of the ion trap mass analyzer;
102. applying a quadrupolar excitation signal to any pair of plates and applying a reverse phase dipolar excitation signal to any pair of plates.
wherein the amplitude of the quadrupolar excitation signal is from 0.1% to 1.2% of the amplitude of the main RF. Preferably, the amplitude of the quadrupolar excitation signal is from 0.8% to 1.2% of the amplitude of the main RF.
The frequency of the quadrupolar excitation signal is 1/n of the frequency of the main RF, and n is an integer greater than one.
Further, the dipolar excitation signal frequency corresponds to the quadrupolar excitation frequency. Specifically, the range of the dipolar excitation signal frequency is within +/−3 k Hz of the frequency corresponding to the unstable region generated by the quadrupolar excitation signal.
Correspondingly, an example of the invention further provides an ion resonance excitation device by applying a quadrupolar electric field combined with a dipolar electric field, comprising: an ion trap mass analyzer, a main RF, a quadrupolar excitation signal source, and a dipolar excitation signal source. The main RF is applied to any pair of plates of the ion trap mass analyzer, and the quadrupolar excitation signal source and the dipolar excitation signal source are respectively applied to any pair of plates of the ion trap mass analyzer. A specific structure is shown in
The ion resonance excitation operation method and device by applying a quadrupolar electric field combined with a dipolar electric field provided by the examples of the invention can be used for the ion trap mass analyzer, realizing the quadrupolar enhanced dipole resonance, improving the sensitivity of the instrument, having an inhibitory effect on the peak broadening effect caused by the high pressure, improving the detection sensitivity and resolution of mass spectrometry devices, especially miniature mass spectrometers, and broadening the application range of miniature mass spectrometers.
The quadrupolar electric field intensity required by the solutions of the examples of the invention is small, and the quadrupolar electric field is used to assist the dipolar resonance excitation. The solutions of the examples of the present invention can suppress the resolution reduction due to the space charge effect.
The examples of the invention are analyzed in perspective of theory. The motion of an ion in an ideal quadrupolar electric field at high pressure satisfies the Mathieu equation.
wherein c represents the damping coefficient, u represents the motion in the x or y direction of the ion, ξ=Ωt/2, representing the time dimension. Vd represents the amplitude of the quadrupolar electric field, ωd represents the frequency of the quadrupolar excitation signal, Vq represents the magnitude of the dipolar electric field, ωq represents the frequency of the dipolar excitation signal, V represents the magnitude of the main RF electric field, and Ω represents the RF frequency, m represents the ion mass, r0 represents the field radius and U represents the applied DC voltage. The ions are excited by applying an auxiliary quadrupolar electric field, and the applied auxiliary quadrupolar electric field splits the first stable region of the Matthew equation into “islands of stability.”
As shown in
The method of the examples of the present invention can be applied to a sine wave frequency scanning miniature mass spectrometer and compared with the results of dipolar excitation tests. The ion source used to generate the ions is an electrospray ion source (ESI), the mass analyzer is a linear ion trap, and the samples used are MRFA, reserpine, and bradykinin.
In addition, an example of the present invention further provides an ion resonance excitation operation method by applying a quadrupolar electric field combined with a dipolar electric field, which is used for a quadrupole, and the method comprises (the recited steps can be performed in any order or simultaneously):
applying a positive main RF to a pair of electrode rods of the quadrupole and applying a negative main RF to the other pair of electrode rods; and
applying a quadrupolar excitation signal to any pair of electrode rods and applying a reverse phase dipolar excitation signal to any pair of electrode rods.
Correspondingly, an example of the present invention provides an ion resonance excitation device by applying a quadrupolar electric field combined with a dipolar electric field, the device comprises: a quadrupole, a positive main RF, a negative main RF, a quadrupolar excitation signal source, and a dipolar excitation signal source. The positive main RF is applied to a pair of electrode rods of the quadrupole, and the negative main RF is applied to the other pair of poles of the quadrupole; the quadrupolar excitation signal source and the dipolar excitation signal source are applied to any pair of electrode rods of the quadrupole, respectively.
The ion resonance excitation operation method and device by applying a quadrupolar electric field combined with a dipolar electric field in the operation mode of the quadrupole can improve the resolution of the quadrupole mass spectrometer. In the operation mode of the quadrupole, the quadrupolar excitation signal can be applied to the main RF in the form of coupling, or applied to the main RF of the quadrupole in the form of amplitude or frequency modulation to divide the stable region into unstable islands.
φ0 is the main RF signal applied to the quadrupole, wherein φ0=(U−V cos(Ωt)), U is the DC applied to the quadrupole. As shown in the left diagram of
The ion resonance excitation operation method and device by applying the quadrupolar electric field combined with the dipolar electric field provided by the examples of the invention can be applied to the quadrupole, thereby improving the resolving power of the quadrupole mass spectrometer.
Although the invention and its advantages have been described in detail, it is understood that without departing from the spirit and scope of the appended claims as defined in the present invention that various modifications, substitutions and changes can be made. Moreover, the scope of the present application is not limited to the specific examples of processes, systems, devices, methods and steps described in the specification. A person skilled in the art based on the disclosure of the present invention will readily understand that in accordance with the present invention they can use processes, equipment, means, methods and steps to implement similar functions as the examples described herein or obtain similar results. Therefore, the appended claims intend to encompass such processes, equipments, means, methods and steps within their scope.
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