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1.
三角形电极离子阱的理论模拟及性能优化   总被引:2,自引:0,他引:2  
作为一种新型结构的线性离子阱,三角形电极离子阱( TeLIT)具有简单的电极结构与良好的分析性能。为进一步提高TeLIT的质谱性能,本研究考察了TeLIT的性能与电极结构的关系。利用模拟软件SIMI-ON和AXSIM分析TeLIT场半径比与其内部电场分布的关系,并模拟离子运动轨迹,得出模拟离子质谱峰。理论模拟结果表明:优化场半径比可以改善内部电场分布,并能显著提高TeLIT的质量分辨率。最终模拟得出场半径比rx/ry=5.75:5时为最优结构,在该结构下,m/z为1892 Th的离子在扫描速率为1500 Th/s时,质量分辨率可以达到8287;扫描速率降为300 Th/s时,最高质量分辨率可达23000。  相似文献   

2.
本研究从理论上优化了一种新型结构的线型离子阱质量分析器-阶梯电极离子阱质量分析器,它是由2对阶梯电极与1对端盖电极组成。与传统平板电极矩形离子阱长阶梯电极离子阱相比,具有调节电场分布的优点,同时在几何结构设计上更接近于双曲面电极结构,但比双曲面电极更容易加工。通过改变阶梯电极结构的高度、宽度、场半径比例等几何参数,实现了对离子阱内部电场分布的优化,从而实现离子阱性能的优化。理论模拟研究结果表明,根据几何结构和电场分布优化获得的阶梯电极离子阱质量分析器(X0×Y0=9 mm×5 mm),可以在225 Da/ s 扫速下获得10150的质量分辨率。阶梯电极离子阱结构简单,分辨能力明显高于矩形离子阱。初步的实验结果表明,阶梯电极离子阱具有较好的串级质谱分析性能。  相似文献   

3.
半圆弧面线性离子阱具有电极结构简单、便于加工和安装精度高等优点。为进一步提升半圆弧面线性离子阱的分析性能,本研究在实验室原有半圆弧面线性离子阱的基础上提出了一种四面开槽的半圆弧面线性离子阱,并对其电极半径与场半径之比r/r0以及离子出射方向上电极的“拉伸”距离进行了优化。模拟结果表明:当r/r0=5:5,离子出射方向上的电极向外“拉伸”0.8~1.2 mm时,离子阱的性能有较大提升,尤其是“拉伸”距离为0.9 mm时所得质量分辨率最高,当扫描速率为409 Da/s时, m/z=609 Da的离子质量分辨率可达到6264( M/△M, FWHM)。作为对比,本研究同时对双曲面线性离子阱的性能进行了仿真优化,结果表明,经过优化后的半圆弧面线性离子阱的性能可与双曲面线性离子阱相媲美。  相似文献   

4.
新型三角形电极圆环离子阱的理论模拟研究   总被引:1,自引:0,他引:1  
圆环离子阱由于其离子储存能力明显优于相同体积下的三维离子阱,近年来被认为是离子阱小型化发展的另一个重要方向。为进一步优化圆环形离子阱的质谱性能,特别是质量分辨能力,本研究提出了一种由三角形电极构建的新型圆环离子阱,它由两个完全等同的、截面为三角形的圆环电极及两个大小不等的圆筒型电极所组成,离子通过共振激发方式弹出。通过理论模拟和对电极结构的优化,获得了具有非对称性的三角形电极结构,通过改善圆环结构,优化电场分布,提高了离子引出效率和离子阱的质量分辨能力,其中一种最优化结构的圆环离子阱对m/z 609离子的质量分辨率达到1486。  相似文献   

5.
离子阱阵列的理论模拟研究   总被引:1,自引:0,他引:1  
罗婵  丁传凡 《分析化学》2012,40(7):989-995
采用电脑模拟的方法对一种新型的离子阱质量分析器——离子阱阵列进行了电极结构的优化.该离子阱质量分析器为一种多通道质量分析器,可以同时对不同的离子进行储存和质量分析.本实验主要研究了该离子阱质量分析器的性能和电极结构之间的关系.通过对离子运动轨迹的计算分析,可以得到模拟的离子质谱峰.通过对模拟离子质谱峰的分析,可以区分出使得离子阱性能较优的电极结构.在对模拟质谱峰的分析中,峰形和离子弹出效率都作为性能指标被考虑.有部分模拟的数据与实验结果进行了对比.  相似文献   

6.
报道了一种结构非常简单的新型线型离子阱质量分析器,它由4块"栅网电极"电极与2块端盖电极合围而成的一个近似于长方体的离子存储和分析空间。"栅网电极"的结构为:首先在矩形电极上加工一个"口"字型的通孔,然后再用导电的栅网覆盖住"口"字表面构成。这4块含有栅网的电极合围成一个四面对称的长方体空间,它们与二个端盖电极组成一个完整的离子阱。用栅网电极构成离子阱质量分析器具有以下优势:(1)结构非常简单。它可以极大地减小离子阱质量分析器对组成离子阱电极的机械加工精度要求,如电极对称性,离子引出孔的线性度与大小,以及对离子阱组装精度的要求,使离子阱质谱的生产工艺和使用维护更加简化;(2)由于传统离子引出电极上的离子引出槽被省去,使得离子阱电极的对称性提高,这有可能改善离子阱内部的电场分布,提高离子阱质量分析器的质谱性能;(3)由于离子引出电极的大部分为栅网,它可以成倍提高离子引出效率,提高质谱仪的分析灵敏度。初步的实验结果表明,用本工作给出的用栅网电极组成的离子阱质量分析器,当栅网宽度为4 mm时,在较低的离子共振激发电压下,即可将离子从阱中弹出,并可以获得高于400的质量分辨率和300 Thomson以上的质量扫描范围。  相似文献   

7.
从理论上讲, 离子阱质谱仪的性能是由阱内电场分布决定的,而电场分布又是由组成离子阱的电极几何结构和离子阱工作电压决定的. 对于矩形离子阱, 即使不考虑其几何结构的偏差, 其阱内的电场分布一般也很复杂. 在矩形离子阱内, 除四极电场外, 还包含多种成分的其他各种高阶场, 它们直接影响离子在阱内的运动轨迹和离子阱质谱的性能. 由于各种电场成分对离子阱内离子运动的影响非常复杂, 还很难从数学上给出精确的解析解, 使得目前从理论上还无法预测高阶场成分对质谱性能的影响. 本工作通过测定不同几何结构的矩形离子阱的稳定图, 从实验上比较了不同场半径, 即不同电场分布条件下的离子阱质谱性能的差别. 实验中, 通过改变离子阱的几何比例结构, 详细测定了不同结构的矩形离子阱的稳定图特征, 并与实验测得的质谱分析结果进行比较. 同时, 我们还详细介绍了矩形离子阱质谱的稳定图的测定方法, 并根据得到的不同情况下的稳定图结构分析了离子阱的质谱性能. 研究结果表明: 可以通过比较试验得到的稳定图结构来判断其离子阱质谱仪的性能如质量分辨能力等. 此外, 实验结果还发现: 对于y方向拉伸结构的矩形离子阱, 其实验绘制得到的是不完整的稳定图. 但根据稳定图边界的特点, 通过采用四极直流电压调制的方法, 可以对y方向拉伸结构的矩形离子阱的性能进行改善, 极大地提高了阱的质量分辨能力.  相似文献   

8.
将数字化离子阱技术和矩形离子阱(RIT)技术相结合,建立了数字化矩形离子阱质谱仪.此技术和装置既具有数字化电源的结构简单、输出稳定和易精确控制等特点,又结合了矩形离子阱的高离子存储效率、结构简单以及加工和装配容易等优点.构建了基于电喷雾(ESI)电离源的数字化矩形离子阱质谱仪系统,并使用Fenfluramine和PPG2000分别对此系统的质量分辨率和质量范围进行了测试.研究结果表明:一个用印刷线路板(PCB)制作的简单矩形离子阱,在200 V(半峰值)的数字束缚电压的驱动下,获得了大于500的质量分辨率和超过2600 Th的质量范围.实验证明,数字化离子阱技术的应用可以显著提高矩形离子阱的性能,特别是质量范围等关键的质谱仪指标.  相似文献   

9.
利用数字离子阱技术进行样品的快速质量分析.在样品离子被引入离子阱的过程中,同时扫描数字射频工作电压的频率和离子共振偶极电压的频率,使得离子在进入离子阱质量分析器后,立即被相应的共振偶极电压所共振激发而逐出离子阱,并被离子探测器测量到.本方法相较于传统离子阱分析过程省去了离子引入、离子冷却和离子清空3个阶段,减少了约3/4的实验分析时间.通过对扫描速度、离子门电压参数的优化,数字束缚射频频率从1000~ 400 kHz线性扫描,扫描速度为2385 Th/s,离子门电压为9V,对利血平(m/z 609),精氨酸(m/z 174)等样品的进行测试,离子信号强度达到最优.结果表明,利用本方法可以获得与离子阱质量分析传统方法相同的质谱结果.  相似文献   

10.
高场非对称波形离子迁移谱(FAIMS)是一种利用非对称电场对气相分子进行分离检测的高灵敏度快速检测技术,超高的非对称波形电场是其迁移区的核心,非对称射频电场的幅值显著影响FAIMS的检测性能.实验以对二甲苯为样品,分析了非对称射频电场幅值对FAIMS检测性能的影响,实验表明随着射频电场幅值增大,检测灵敏度降低而分辨率增...  相似文献   

11.
In this paper, the shapes of the electrodes are modified based on a rectilinear ion trap to achieve unidirectional ejection of ions. The designed asymmetric rectilinear ion trap (ARIT) analyzer adds convex and concave circular structures with a height of 0.5 mm on the two X‐electrodes, so that the electric field center of the ion trap is inclined to the concave side. The electric field lines of the convex side are compressed to the concave side. Both simulations and experimental results show that ions are more likely to emit from the slit on the concave side plate when performing ion resonance ejection. The mass spectrum signal intensity can reach more than twice that of the original rectilinear trap when using only one detector. Calculations of the electric field components in the trap show that the even‐order higher field proportion in the ion trap has not been significantly affected. Combined with the experimental test results, the study further confirmed that the developed ARIT has no significant loss in mass resolution, tandem mass spectrometry capability, and quantitative analysis capability. The proposed asymmetric structure modification scheme can achieve single‐side ejection without significantly affecting other performances of the analyzer, which provides a new idea for the structural optimization of the subsequent ion trap analyzers.  相似文献   

12.
The polygonal electrode linear ion trap (PeLIT) can produce quadrupolar electric field plus some higher order field, which balances the relationship between mass resolution and electrode manufacturing difficulties. The electrodes of PeLIT are relatively simple, but have a good mass resolving power. This study investigated the relationship between the electric field distribution and the ion trap structures, and the performances of PeLIT through theoretical simulation and experimental study. Research results of simulation showed that the polygonal electrode linear ion traps with different structures had different electric field distributions and mass analysis performances. The negative decapole field distorted the performances significantly. The experimental results showed that the mass resolution of reserpine ions (m/z 609) was more than 2500 using a polygonal electrode ion trap. At the same time, mass selective excitation and tandem mass spectrometry experiments were also carried.  相似文献   

13.
An asymmetric trapping field was generated from an asymmetric half-round rod electrode linear ion trap (A-HreLIT), and its performance of unidirectional ion ejection was studied. Two different asymmetric structures of A-HreLITs were constructed, one rotating y electrode pairs toward an x electrode with an angle θ, and the other stretching one x electrode with a distance α. The center of trapping field was displaced away from the geometrical center of the ion trap, defined to be the midpoint along the axis of y between x electrodes, which leads to unidirectional ion ejection through one x electrode. Computer simulations were used to investigate the relationship between asymmetric geometric parameter of θ (or α) and analytical performance. Both structures could result in similar asymmetric trapping fields, which mainly composed of dipole, quadrupole, and hexapole fields. The dipole and hexapole fields were approximately proportional to the asymmetric geometric parameter of rotation angle θ (or stretch distance α). In simulation, ion trajectories and ion kinetic energy were calculated. For ions with m/z 609 Th, the simulation results showed that mass resolution of over 2400 (FWHM) and ion unidirectional ejection efficiency of nearly 90% were achieved in an optimized A-HreLIT. Ion detection efficiency of A-HreLIT could be improved significantly with only one ion detector, while maintaining a considerable mass resolution. Furthermore, the A-HreLIT could be driven by a traditional balanced RF power supply. These advantages make A-HreLIT suitable for developing miniaturized mass spectrometer with high performance.
Graphical Abstract ?
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14.
A multi-particle ion trajectory simulation program ITSIM 6.0 is described, which is capable of ion trajectory simulations for electrode configurations with arbitrary geometries. The electrode structures are input from a 3D drawing program AutoCAD and the electric field is calculated using a 3D field solver COMSOL. The program CreatePot acts as interface between the field solver and ITSIM 6.0. It converts the calculated electric field into a field array file readable by ITSIM 6.0 and ion trajectories are calculated by solving Newton's equation using Runge-Kutta integration methods. The accuracy of the field calculation is discussed for the ideal quadrupole ion trap in terms of applied mesh density. Electric fields of several different types of devices with 3D geometry are simulated, including ion transport through an ion optical system as a function of pressure. Ion spatial distributions, including the storage of positively charged ions only and simultaneous storage of positively/negatively charged ions in commercial linear ion traps with various geometries, are investigated using different trapping modes. Inelastic collisions and collision induced dissociation modeled using RRKM theory are studied, with emphasis on the fragmentation of n-butylbenzene inside an ideal quadrupole ion trap. The mass spectrum of 1,3-dichlorobenzene is simulated for the rectilinear ion trap device and good agreement is observed between the simulated and the experimental mass spectra. Collisional cooling using helium at different pressures is found to affect mass resolution in the rectilinear ion trap.  相似文献   

15.
A mesh-electrode linear ion trap (ME-LIT) mass analyzer was developed and its performance was primarily characterized. In conventional linear ion trap mass analyzers, the trapped ions are mass-selected and then ejected in a radial direction by a slot on a trap electrode. The presence of slots can strongly affect the electric field distribution in the ion trapping region and distort the mass analysis performance. To compensate for detrimental electric field effects, the slot is usually designed and fabricated to be as small as possible, and also has very high mechanical accuracy and symmetry. A ME-LIT with several mesh electrodes was built to compensate for the effects caused by slots. Each mesh electrode was fabricated from a plate electrode with a relatively large slot and the slot was covered with a conductive mesh. Our preliminary experimental results show that the ME-LIT could considerably diminish the detrimental electric field effects caused by slots, and increase the mass resolving power and ion detection efficiency. Even with 4-mm-wide slots, a mass resolution in excess of 600 was obtained using the ME-LIT. Mass resolution could be remarkably improved using mesh electrodes in ion traps with asymmetric electrodes. The stability diagram of the ME-LIT was mapped, and highly efficient tandem mass spectrometry was demonstrated. The ME-LIT was qualified as a LIT mass analyzer. The ME-LIT can improve the mass resolution and decrease the requirements of mechanical accuracy and symmetry of slots, so it shows potential for a wide range of practical uses.
Figure
?  相似文献   

16.
Ion transfer and storage using inhomogeneous radio frequency (RF) electric fields in combination with gas-assisted ion cooling and focusing constitutes one of the basic techniques in mass spectrometry today. The RF motion of ions in the bath gas environment involves a large number of ion-neutral collisions that leads to the internal activation of ions and their effective "heating" (when a thermal distribution of internal energies results). The degree of ion activation required in various applications may range from a minimum level (e.g., slightly raising the average internal energy) to an intense level resulting in ion fragmentation. Several research groups proposed using the effective temperature as a measure of ion activation under conditions of multiple ion-neutral collisions. Here we present approximate relationships for the effective ion temperature relevant to typical operation modes of RF multipole devices. We show that RF ion activation results in near-thermal energies for ions occupying an equilibrium position at the center of an RF trap, whereas increased ion activation can be produced by shifting ions off-center, e.g., by means of an external DC electric field. The ion dissociation in the linear quadrupole ion trap using the dipolar DC ion activation has been observed experimentally and interpreted in terms of the effective ion temperature.  相似文献   

17.
The halo ion trap (IT) was modified to allow for axial ion ejection through slits machined in the ceramic electrode plates rather than ejecting ions radially to a center hole in the plates. This was done to preserve a more uniform electric field for ion analysis. An in-depth evaluation of the higher-order electric field components in the trap was also performed to improve resolution. The linear, cubic and quintic (5th order) electric field components for each electrode ring inside the IT were calculated using SIMION (SIMION version 8, Scientific Instrument Services, Ringoes, NJ, USA) simulations. The preferred electric fields with higher-order components were implemented experimentally by first calculating the potential on each electrode ring of the halo IT and then soldering appropriate capacitors between rings without changing the original trapping plate design. The performance of the halo IT was evaluated for 1% to 7% cubic electric field (A 4/A 2) component. A best resolution of 280 (mm) for the 51-Da fragment ion of benzene was observed with 5% cubic electric field component. Confirming results were obtained using toluene, dichloromethane, and heptane as test analytes.  相似文献   

18.
Chemical mass shifts were measured in a Paul ion trap operated in the mass-selective instability scan with resonance ejection using a custom-built instrument. These shifts, which can be as much as 2%, decrease with increasing endcap electrode separation owing to changes in the higher order contributions to the electric field. They also decrease with decreasing helium buffer gas pressure. Both of these effects are analogous to those found with boundary ejection. This suggests that the previously proposed chemical mass shift mechanism based on compound-dependent collisional modification of the ejection delay produced by field faults near the endcap electrode apertures holds true also for resonance ejection. The influence of the resonance frequency on chemical mass shifts was also investigated and it is shown that at certain working points (values of the Mathieu parameter q(z) and a(z)) non-linear resonances greatly reduce the ejection delay for all ions, regardless of their chemical structures, and thus reduce the magnitude of the chemical mass shift. Energetic collisions leading to dissociation can take place at an earlier stage during the ejection process in the mass analysis scan when using resonance ejection compared with boundary ejection. This leads to even larger chemical mass shifts of fragile ions in resonance ejection. Increasing the resonance voltage amplitude can enhance this effect. The chemical mass shifts of fragile ions increase with increase in the resonance voltage amplitude, whereas negligible changes occur for structurally stable ions.  相似文献   

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