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基于反馈流量比率法的连续在线真实滴定。误差补偿原理。

Continuous on-line true titrations by feedback-based flow ratiometry. The principle of compensating errors.

作者信息

Tanaka H, Dasgupta PK, Huang J

机构信息

Department of Chemistry and Biochemistry, Texas Tech University, Lubbock 79409-1061, USA.

出版信息

Anal Chem. 2000 Oct 1;72(19):4713-20. doi: 10.1021/ac000598t.

Abstract

We introduce a new concept for continuous on-line titrations based on feedback-controlled flow ratiometry and the principle of compensating errors. The system has been thoroughly tested by applying it to acid-base neutralization titrations with indicator-based end point detection. In a typical case, the total flow (FT, consisting of the sample and the titrant flows) is held constant while the titrant (e.g., a standard base containing an indicator) flow FB varies linearly in response to a controller output voltage. The sample (e.g., an acidic solution to be titrated) flow FA constitutes the makeup and thus also varies (FA = FT - FB). The status of the indicator color in the mixed stream is monitored by an optical detector and used either for governing the controller output or for interpreting the results of the titration. Three methods (PID based control, fixed triangular wave control, and feedback-based triangular wave control implemented on a PC) were examined. In the last and the most successful approach, the titrant flow is initially ramped upward linearly. At the instant a change in the color is sensed by the detector, the titrant flow rate FH is higher than the true equivalence flow rate FE because of the lag time between the first compositional change and its detection. The sensing of the change in color causes the system output to immediately reverse its ramp direction such that the titrant flow now goes down linearly at the same rate. At the instant a change in color, in the opposite direction this time, is again sensed, the titrant flow rate FL is lower than FE by exactly the same amount that FH was higher than FE. This principle of compensating errors (FE = (FH + FL)/2) allows true titrations with excellent reproducibility and speed (0.6% RSD at 3 s/titration and 0.2% RSD at 10 s/titration) and titrant volume consumption as little as 12 microL/titration and solves an old conceptual problem in flow based titrations.

摘要

我们基于反馈控制的流量比率测定法和误差补偿原理,引入了一种连续在线滴定的新概念。该系统已通过将其应用于基于指示剂终点检测的酸碱中和滴定进行了全面测试。在典型情况下,总流量(FT,由样品和滴定剂流量组成)保持恒定,而滴定剂(例如,含有指示剂的标准碱)流量FB根据控制器输出电压线性变化。样品(例如,待滴定的酸性溶液)流量FA构成补充流量,因此也会变化(FA = FT - FB)。混合流中指示剂颜色的状态由光学检测器监测,并用于控制控制器输出或解释滴定结果。研究了三种方法(基于PID的控制、固定三角波控制以及在个人计算机上实现的基于反馈的三角波控制)。在最后一种也是最成功的方法中,滴定剂流量最初线性上升。在检测器检测到颜色变化的瞬间,由于第一次成分变化与其检测之间的滞后时间,滴定剂流速FH高于真实等当点流速FE。颜色变化的检测导致系统输出立即反转其上升方向,使得滴定剂流量现在以相同速率线性下降。在再次检测到颜色向相反方向变化的瞬间,滴定剂流速FL比FE低的量恰好与FH比FE高的量相同。这种误差补偿原理(FE = (FH + FL)/2)允许进行具有出色重现性和速度(滴定时间为3秒时相对标准偏差为0.6%,滴定时间为10秒时相对标准偏差为0.2%)的真实滴定,滴定剂体积消耗低至12微升/滴定,并解决了基于流动滴定中的一个古老概念问题。

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