An isotope separation enrichment device having a multipole rod mass analyzer

By combining an ICP ion source and a multipole mass analyzer, the problems of low ionization efficiency and high cost of magnetic isotope separation devices are solved, realizing an efficient, low-cost and easy-to-maintain isotope enrichment device suitable for the separation and enrichment of various isotopes.

CN115876867BActive Publication Date: 2026-04-17NANJING UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NANJING UNIV
Filing Date
2021-08-17
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing magnetic isotope separation devices suffer from low ionization efficiency, high construction costs, and difficult operation and maintenance, making it impossible to achieve universal and efficient isotope enrichment.

Method used

Using an ICP ion source assembly and a multipole mass analyzer, plasma is generated through inductive coupling to ionize high-concentration solutions. Specific isotopes are screened and separated using the multipole mass analyzer, and data processing is performed using a pluggable receiver and signal amplifier.

Benefits of technology

It achieves high ionization efficiency, reduces device costs, simplifies maintenance, is versatile, and can enrich multiple isotopes.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses an isotope separation and enrichment device with a multipole mass analyzer, comprising a pre-chamber and a vacuum chamber, and a vacuum interface between the two. An ICP ion source assembly is installed inside the pre-chamber, and the ICP ion source assembly is connected to an ion extraction system inside the vacuum chamber via the vacuum interface. The multipole mass analyzer is connected to the rear side of the ion extraction system, followed by a pluggable receiver and a signal amplifier. The isotope separation and enrichment device also includes an electronic control system. This invention can improve the ionization efficiency of existing technologies, reduce device construction costs, and reduce maintenance difficulty.
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Description

Technical Field

[0001] This invention belongs to the field of analytical testing technology, and specifically relates to an isotope separation and enrichment device. Background Technology

[0002] Most elements in the periodic table have multiple isotopes. In modern industry, medicine, biology, and geochemistry, it is necessary to highly enrich specific isotopes of elements. For example, natural nitrogen exists in two isotopes, 235U and 238U, with abundances of 0.7% and 99.3%, respectively. However, nuclear fuel can only use high-purity 235U, so it is necessary to purify and highly enrich the low-abundance 235U found in nature to produce nuclear fuel. Similarly, in the medical field, enriched isotopes are often used to identify metabolic abnormalities. One routine item in physical examinations is Helicobacter pylori infection, which is detected using a carbon-13 urea breath test, utilizing carbon-13 enriched raw materials. Furthermore, in various environmental and chemical analysis fields, isotopes of various metallic and non-metallic elements are frequently used to trace the migration of pollutants or chemical reaction processes; these tracer substances are also highly enriched isotopes.

[0003] There are various types of isotope separation and enrichment techniques. For the enrichment of gaseous isotopes, thermal diffusion or cryogenic distillation methods are generally used; for the enrichment of 235U, gas centrifuges and laser ionization at specific wavelengths can be used; and for isotopes of certain elements, such as 6Li, ion exchange can be used. However, these methods are all specialized and require specialized equipment and methods to achieve the separation and enrichment of specific elements and isotopes. These specialized equipment and methods cannot be applied to the enrichment of other types of isotopes. Therefore, it is necessary to find equipment and methods with a certain degree of versatility.

[0004] The currently available general method for isotope separation and enrichment is electromagnetic separation, and its apparatus is similar to a large magnetic mass spectrometer. The existing technical implementation scheme is a magnetic isotope separation device, the structure and principle diagram of which are shown below. Figure 1 As shown: its key components include an ion source, a sector magnetic field, and an isotope receiving cup. The principle of the ion source is generally solid hot surface ionization or gas electron bombardment ionization. The elements ionized in the ion source are accelerated by an electric field in a high vacuum chamber to form an ion beam that enters the sector magnetic field. Under the magnetic field, they are deflected by the Lorentz effect. Ions with different mass / charge ratios have different deflection radii. By adjusting the magnetic field strength, specific isotopes can be selected and received by the isotope receiving cup after the sector magnetic field.

[0005] The applicant's research and analysis revealed the following shortcomings in the existing technology:

[0006] (1) Low ionization efficiency: The ionization efficiency of hot surface ionization is about 1%, while the ionization efficiency of gas electron bombardment is only about 0.01%.

[0007] (2) High construction cost: Due to the limitation of ion source ionization efficiency, magnetic isotope separation devices must increase their physical size to support a sufficiently strong isotope ion beam in order to obtain a sufficient amount of enriched isotopes within a specified time. However, large-scale high-vacuum systems and fan-shaped magnetic fields are extremely expensive. A commercial magnetic mass spectrometer with a radius of 300 mm (with the same basic principle as magnetic isotope separation devices) costs several million RMB, and the ion beam current it can support is generally in the range of 10⁻⁹ A, which cannot achieve meaningful isotope enrichment. Almost all magnetic isotope separation devices with industrial enrichment capabilities are built with national fiscal appropriations.

[0008] (3) High maintenance difficulty: Since large magnetic isotope separation devices are special facilities and the ion source is also in the vacuum chamber, they require professional personnel to operate and maintain them.

[0009] Therefore, it is necessary to find new equipment and new methods to solve the corresponding technical problems. Summary of the Invention

[0010] In view of this, it is necessary to overcome at least one of the aforementioned defects in the prior art. The present invention provides an isotope separation and enrichment apparatus with a multipole mass analyzer, comprising:

[0011] The system includes a pre-cavity chamber and a vacuum chamber connected to the rear side of the pre-cavity chamber, with a vacuum interface between the pre-cavity chamber and the vacuum chamber. An ICP ion source assembly is installed inside the pre-cavity chamber. The ICP ion source assembly is connected to an ion extraction system installed inside the vacuum chamber via the vacuum interface. A multi-pole mass analyzer is connected to the rear side of the ion extraction system. A pluggable receiver is connected to the rear side of the multi-pole mass analyzer. A signal amplifier is also connected to the rear side of the pluggable receiver.

[0012] The vacuum chamber is also connected to a molecular pump for creating a high vacuum inside the vacuum chamber;

[0013] The isotope separation and enrichment device also includes an electronic control system, which includes an ICP radio frequency power supply for exciting plasma, a multipole radio frequency power supply for screening and separating isotopes, and control function devices. The pre-cavity is an ambient atmospheric pressure chamber, and the ICP ion source assembly includes a torch tube, which is placed before the vacuum interface.

[0014] In this technical solution, the ICP ion source component ionizes a high-concentration solution containing the analyte element using plasma generated by inductive coupling, producing plasma. The plasma enters the ion extraction system within the vacuum chamber through a vacuum interface. Ions generated by the ICP ion source component are extracted and introduced into a multipole mass analyzer. By controlling the multipole mass analyzer, isotopes with a specific mass number are allowed to pass through the analyzer, while other isotopes are diverted elsewhere. The isotopes that pass through the analyzer are received by a receiver and amplified to form identifiable analytical information, or they are received by a plug-in receiver, which removes excess charge, causing the ions to deposit on the surface of the plug-in receiver. After collecting sufficient isotopes, the plug-in receiver is removed, and the isotopes are extracted using chemical methods, such as acid immersion, to obtain analyzable data.

[0015] This technical solution provides a novel design that uses the ionization of a high-concentration solution to form an ion source of a certain concentration. A specific isotope is then obtained through a multipole mass analyzer. This solution addresses the problems of low ionization efficiency, high construction cost, and difficult operation and maintenance found in existing large-scale magnetic isotope separation devices, and constructs an efficient, low-cost, and universal isotope enrichment device.

[0016] In addition, the isotope separation and enrichment device with a multipole mass analyzer disclosed in this invention also has the following additional technical features:

[0017] Furthermore, the ICP ion source assembly also includes a high-concentration solution container and an inductively coupled component that interacts with the high-concentration solution container to generate plasma.

[0018] Furthermore, the multipole mass analyzer is a quadrupole mass analyzer or a hexapole mass analyzer.

[0019] Furthermore, the pluggable receiver is a grounded Faraday cup.

[0020] Furthermore, the Faraday cup is constructed using a cup structure made of elemental graphite or an inert metal material.

[0021] Furthermore, the vacuum chamber has a top cover for easy disassembly, installation, and maintenance of the ion extraction system and the multipole mass analyzer. Based on this invention, only one mass number of isotopes can be collected at a time, while other isotopes entering the vacuum chamber are deviated from the ion optical path and "screened out" by the multipole, with some potentially depositing on the quadrupole. Therefore, it is necessary to ensure easy replacement and cleaning.

[0022] Furthermore, the electronic control system includes an ICP radio frequency power supply for exciting the plasma, a quadrupole radio frequency power supply for screening and separating isotopes, and corresponding electronic software, hardware, and firmware control systems for controlling the normal operation of various functional devices, such as vacuum pumps.

[0023] The firmware control system mainly includes: 1. Power distribution module: 220V AC to 12V / 24V / 48V DC power supply. 2. Instrument control module: used to control the vacuum system control module, ICP RF power supply module, quadrupole RF power supply module, signal amplifier module, pneumatic solenoid valve control module, and sensor data readback of each module unit. 3. ICP RF power supply module. 4. Quadrupole RF power supply module. 5. Vacuum system control module. 6. Signal amplifier module. 7. Pneumatic solenoid valve control module: ICP pneumatic circuit control and vacuum interface closure control. 8. Communication module: using Ethernet or fiber optic communication to enable data transmission and analog-to-digital control between the data processing system and the instrument control module.

[0024] Furthermore, the vacuum interface adopts a salt-resistant, large-aperture cone structure. During operation, a high-concentration single-element solution will be introduced; therefore, the quadrupole-based general isotope separation device will employ a salt-resistant design (such as low-cost consumables and a large-aperture cone) in the ICP and vacuum interface sections (corresponding to the sampling and retrieval cones of the multi-pole).

[0025] Furthermore, the cone-shaped aperture of the receiver and the vacuum interface and the ion source are on an unobstructed straight line, which is also known as a straight-through ion optical structure.

[0026] Furthermore, by employing a short multipole, and combining it with other structures of the device, the ion throughput can be further improved, while the size and cost of the device can be further reduced. The length of the short multipole can be calculated and determined experimentally based on the expected value.

[0027] Furthermore, the vacuum interface is located in the chamber between the pre-cavity chamber and the vacuum chamber.

[0028] This device has the following characteristics.

[0029] (1) High ionization efficiency. Ionization is achieved using the ICP principle, and 100% ionization can be achieved for almost all metal elements. Continuous sample injection can be achieved under laboratory conditions without the need to frequently open the vacuum chamber.

[0030] (2) It has good versatility and can achieve enrichment of multiple isotopes. The quadrupole technique can be used to separate and enrich isotopes of all metals from the lightest metal Li to the heaviest metal U.

[0031] (3) Low construction cost. This device can be modified from a commercial quadrupole ICP mass spectrometer. The price of a commercial quadrupole ICP mass spectrometer is currently 500,000 to 1,000,000 RMB. Compared with magnetic isotope separation devices, it is extremely economical.

[0032] (4) Simple operation and maintenance. Relevant personnel only need basic training to open the vacuum chamber and replace the Faraday cup.

[0033] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0034] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, wherein:

[0035] Figure 1 This is a schematic diagram illustrating the structural principle of the existing magnetic isotope separation device of the present invention;

[0036] Figure 2 This is a schematic diagram of an embodiment of the isotope separation and enrichment device with a multipole mass analyzer of the present invention.

[0037] The components include: 11. Ion source; 12. High vacuum chamber; 13. Sector magnetic field; 14. Isotope receiving cup; 1. Torch tube; 2. Vacuum interface; 3. Quadrupole mass analyzer; 4. Turbomolecular vacuum pump; 5. Plug-in isotope collector; 6. Resistance amplifier; 7. RF coil; 8. Vacuum chamber; 9. Sealing ring; 10. Removable top cover; 1A Pre-chamber. Detailed Implementation

[0038] Embodiments of the present invention are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.

[0039] In the description of this invention, it should be understood that the terms "upper", "lower", "bottom", "top", "front", "back", "inner", "outer", "horizontal", "vertical", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0040] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "connection," "connection," "linking," "joining," and "fitting" should be interpreted broadly. For example, they can refer to a fixed connection, an integral connection, or a detachable connection; they can refer to the internal connection of two components; they can refer to a direct connection or an indirect connection through an intermediate medium; "fitting" can refer to the fit between surfaces, or the fit between a point and a surface or a line and a surface, and also includes the fit between a hole and a shaft. For those skilled in the art, the specific meaning of the above terms in this invention can be understood according to the specific circumstances.

[0041] The isotope separation and enrichment apparatus with a multipole mass analyzer of the present invention will now be described with reference to the accompanying drawings, wherein... Figure 1 This is a schematic diagram illustrating the structural principle of the existing magnetic isotope separation device of the present invention; Figure 2 This is a schematic diagram of an embodiment of the isotope separation and enrichment device with a multipole mass analyzer of the present invention.

[0042] like Figure 2 As shown, according to an embodiment of the present invention, an isotope separation and enrichment device with a multipole mass analyzer includes a pre-chamber and a vacuum chamber connected to the rear side of the pre-chamber. A vacuum interface is provided between the pre-chamber and the vacuum chamber. An ICP ion source assembly is installed inside the pre-chamber. The ICP ion source assembly is connected to an ion extraction system installed in the vacuum chamber through the vacuum interface. A multipole mass analyzer is connected to the rear side of the ion extraction system. A pluggable receiver is connected to the rear side of the multipole mass analyzer. A signal amplifier is also connected to the rear side of the pluggable receiver.

[0043] The vacuum chamber is also connected to a molecular pump for creating a high vacuum inside the vacuum chamber;

[0044] The isotope separation and enrichment device also includes an electronic control system, which includes an ICP radio frequency power supply for exciting plasma, a multipole radio frequency power supply for screening and separating isotopes, and control function devices. The pre-cavity is an ambient atmospheric pressure chamber, and the ICP ion source assembly includes a torch tube, which is placed before the vacuum interface.

[0045] In addition, the isotope separation and enrichment apparatus with a multipole mass analyzer disclosed in this invention also has the following additional technical features:

[0046] According to an embodiment of the present invention, the ICP ion source assembly further includes a high-concentration solution container and an inductively coupled component that interacts with the high-concentration solution container to generate plasma.

[0047] According to an embodiment of the present invention, the multipole mass analyzer is a quadrupole mass analyzer or a hexapole mass analyzer.

[0048] According to some embodiments of the present invention, the pluggable receiver is a grounded Faraday cup.

[0049] Furthermore, the Faraday cup is constructed using a cup structure made of elemental graphite or an inert metal material.

[0050] According to an embodiment of the present invention, the vacuum chamber has a top cover for convenient disassembly, installation, and maintenance of the ion extraction system and the multipole mass analyzer. The top cover can be easily removed for maintenance of the ion extraction system and the quadrupole, as well as for replacing the Faraday cup to collect isotopes.

[0051] The control function devices include electronic software, hardware, and firmware control systems for the normal operation of units such as vacuum pumps.

[0052] According to an embodiment of the present invention, the vacuum interface adopts a salt-resistant large-diameter conical structure.

[0053] According to an embodiment of the present invention, the cone aperture of the receiver and the vacuum interface and the ion source are on an unobstructed straight line, which is also a straight-through ion optical structure.

[0054] Furthermore, employing a short multipole, combined with other structural elements of the device, further enhances ion throughput while simultaneously reducing the device's size and cost. The length of the short multipole can be calculated and determined experimentally based on expected values. The short multipole can be a short quadrupole or a short hexapole, etc.

[0055] According to an embodiment of the present invention, the vacuum interface is located in a chamber between the pre-cavity chamber and the vacuum chamber.

[0056] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention.

[0057] Any reference to "an embodiment," "embodiment," "illustrative embodiment," etc., means that the specific component, structure, or feature described in connection with that embodiment is included in at least one embodiment of the present invention. Such illustrative expressions throughout this specification do not necessarily refer to the same embodiment. Furthermore, when a specific component, structure, or feature is described in connection with any embodiment, it is claimed that implementing such a component, structure, or feature in connection with other embodiments falls within the scope of those skilled in the art.

[0058] Although specific embodiments of the invention have been described in detail with reference to several illustrative examples, it should be understood that those skilled in the art can devise various other modifications and embodiments that fall within the spirit and scope of the invention. Specifically, reasonable variations and modifications can be made to the arrangement of components and / or dependent combinations within the scope of the foregoing disclosure, drawings, and claims without departing from the spirit of the invention. The scope of these variations and modifications, apart from those concerning components and / or layout, is defined by the appended claims and their equivalents.

Claims

1. An isotope separation and enrichment device with a multipole mass analyzer, characterized in that... The system includes a pre-chamber and a vacuum chamber connected to the rear side of the pre-chamber. A vacuum interface is provided between the pre-chamber and the vacuum chamber. An ICP ion source assembly is installed inside the pre-chamber. The ICP ion source assembly is connected to an ion extraction system installed in the vacuum chamber through the vacuum interface. A multi-pole mass analyzer is connected to the rear side of the ion extraction system. A pluggable receiver is connected to the rear side of the multi-pole mass analyzer. A signal amplifier is also connected to the rear side of the pluggable receiver. The vacuum chamber is also connected to a molecular pump for creating a high vacuum inside the vacuum chamber; The isotope separation and enrichment device also includes an electronic control system, which includes an ICP radio frequency power supply for exciting plasma, a multipole radio frequency power supply for screening and separating isotopes, and control function devices. The pre-position chamber is an ambient atmospheric pressure chamber. The ICP ion source assembly includes a torch tube, which is placed before the vacuum interface. The ICP ion source assembly also includes a high-concentration solution container and an inductively coupled component that interacts with the high-concentration solution container to generate plasma. The multipole mass analyzer is either a quadrupole mass analyzer or a hexapole mass analyzer, and the vacuum interface adopts a salt-resistant large-aperture conical structure. The ICP ion source assembly uses plasma generated by inductive coupling to ionize a high-concentration solution containing the analyte element, producing plasma that enters the ion extraction system within the vacuum chamber through a vacuum interface. The extracted ions are then introduced into a multipole mass analyzer. By controlling the multipole mass analyzer, isotopes with a specific mass number are allowed to pass through, while other isotopes are diverted elsewhere. The isotopes that pass through the analyzer are received by a pluggable receiver, and excess charge is removed, causing ions to deposit on the surface of the pluggable receiver. After collecting enough isotopes, the pluggable receiver is removed, and the isotopes are extracted using chemical methods to obtain analyzable data.

2. The isotope separation and enrichment device with a multipole mass analyzer according to claim 1, characterized in that, The pluggable receiver is a grounded Faraday cup.

3. The isotope separation and enrichment device with a multipole mass analyzer according to claim 2, characterized in that, The Faraday cup is constructed using a cup structure made of elemental graphite or an inert metal.

4. The isotope separation and enrichment device with a multipole mass analyzer according to claim 1, characterized in that, The vacuum chamber has a top cover for easy disassembly, installation, and maintenance of the ion extraction system and the multipole mass analyzer.

5. An isotope separation and enrichment device with a multipole mass analyzer according to claim 1, characterized in that, The receiver and the cone-shaped aperture of the vacuum interface are aligned with the ion source in an unobstructed straight line.

Citation Information

Patent Citations

  • Isotope separation and enrichment device with multi-pole rod mass analyzer

    CN215985851U

  • ICP mass spectrometer

    JP2014107012A