Wilcox Bruce E, Hendrickson Christopher L, Marshall Alan G
Department of Chemistry, Florida State University, Tallahassee 32310, USA.
J Am Soc Mass Spectrom. 2002 Nov;13(11):1304-12. doi: 10.1016/S1044-0305(02)00622-0.
Externally generated ions are accumulated in a linear octopole ion trap before injection into our 9.4 T Fourier transform ion cyclotron resonance (FT-ICR) mass analyzer. Such instrumental configuration has previously been shown to provide improved sensitivity, scan rate, and duty cycle relative to accumulated trapping in the ICR cell. However, inefficient ion ejection from the octopole currently limits both detection limit and scan rate. SIMION 7.0 analysis predicts that a dc axial electric field inside the linear octopole ion trap expedites and synchronizes the efficient extraction of the octopole-accumulated ions. Further SIMION analysis optimizes the ion ejection properties of each of three electrode configurations designed to produce a near-linear axial potential gradient. More efficient extraction and transfer of accumulated ions spanning a wide m/z range promises to reduce detection limit and increase front-end sampling rate (e.g., to increase front-end resolution for separation techniques coupled with FT-ICR mass analysis). Addition of the axial field improves experimental signal-to-noise ratio by more than an order of magnitude.
外部产生的离子在注入我们的9.4T傅里叶变换离子回旋共振(FT-ICR)质量分析仪之前,先在一个线性八极杆离子阱中积累。相对于在ICR池中进行累积捕获,这种仪器配置先前已被证明能提供更高的灵敏度、扫描速率和占空比。然而,目前八极杆中离子的低效喷射限制了检测限和扫描速率。SIMION 7.0分析预测,线性八极杆离子阱内部的直流轴向电场可加速并同步八极杆累积离子的高效提取。进一步的SIMION分析优化了三种电极配置中每一种的离子喷射特性,这些配置旨在产生接近线性的轴向电位梯度。在宽m/z范围内更有效地提取和转移累积离子,有望降低检测限并提高前端采样速率(例如,提高与FT-ICR质量分析相结合的分离技术的前端分辨率)。添加轴向场可将实验信噪比提高一个多数量级。