Department of Mechanical Engineering, Brigham Young University, Provo, Utah 84604, United States.
Department of Statistics, Brigham Young University, Provo, Utah 84604, United States.
Anal Chem. 2021 May 4;93(17):6739-6745. doi: 10.1021/acs.analchem.1c00438. Epub 2021 Apr 22.
This paper compares static (i.e., temporally unchanging) thermal gradient gas chromatography (GC) to isothermal GC using a stochastic transport model to simulate peak characteristics for the separation of C12-C14 hydrocarbons resulting from variations in injection bandwidth. All comparisons are made using chromatographic conditions that give approximately equal analyte retention times so that the resolution and number of theoretical plates can be clearly compared between simulations. Simulations show that resolution can be significantly improved using a linear thermal gradient along the entire column length. This is mainly achieved by partially compensating for loss in resolution from the increase in mobile phase velocity, which approximates an ideal, basic separation. The slope of the linear thermal gradient required to maximize resolution is a function of the retention parameters, which are specific to each analyte pair; a single static, thermal gradient will not affect all analytes equally. A static, non-linear thermal gradient that creates constant analyte velocities at all column locations provides the largest observed gains in resolution. From the simulations performed in this study, optimized linear thermal gradient conditions are shown to improve the resolution by as much as 8.8% over comparative isothermal conditions, even with a perfect injection (i.e., zero initial bandwidth).
本文通过随机输运模型将静态(即时间不变)热梯度气相色谱(GC)与等温 GC 进行了比较,以模拟由于进样带宽变化而导致的 C12-C14 烃分离的峰特征。所有比较均使用色谱条件进行,这些条件给出了大致相等的分析物保留时间,以便可以清楚地比较模拟之间的分辨率和理论塔板数。模拟表明,通过在线性沿整个柱长的温度梯度可以显著提高分辨率。这主要是通过部分补偿由于流动相速度增加而导致的分辨率损失来实现的,这近似于理想的基本分离。最大限度地提高分辨率所需的线性温度梯度斜率是每个分析物对特有的保留参数的函数;单个静态、温度梯度不会对所有分析物产生同等影响。在所有柱位置上产生恒定分析物速度的静态非线性温度梯度可提供最大的分辨率提高。从本研究进行的模拟来看,优化的线性温度梯度条件可将分辨率提高多达 8.8%,与等温条件相比,即使采用完美的进样(即零初始带宽)也是如此。