- P-ISSN 1225-0163
- E-ISSN 2288-8985
적정 화학반응에는 화학종의 전위차 변화뿐만 아니라 지시약의 색깔 변화도 포함된다. 전위차적정에서는 종말점에서 전위의 급격한 변화를 측정하여 적정 곡선을 얻는다. 산-염기 적정은 일반적으로지시약의 색 변화를 관찰하여 종말점을 결정함으로써 수행된다. 전위차를 측정하여 종말점을 결정하는방법은 잘 확립 되어 상용화되어 있지만 색의 변화를 관찰하여 종말점을 얻는 장치는 많지 않은 실정이다. 적외선 광원과 감지기로 적정액 방울을 계수하고, 백색광원과 광 검출기로 종말점의 변색을 감지하여 아날로그-디지털 변환기인 아두이노 (Arduino)가 적용된 간단하고 정밀한 스펙트럼 종말점 검출 기구를 제작하였다. Spectrator는 지시약으로 티몰 블루를 사용한 산-염기 적정에서 재현성 측면에서 우수한결과를 보였다. Spectrator 제작 과정과 이를 사용한 실험결과를 공유한다.
During titration, several chemical reactions result in changes not only in the potential of chemicals, but also in the colors of the indicator. In a potentiometric titration, a titration curve is obtained by measuring the abrupt change in the potential at the endpoint. Generally, acid–base titration is performed by observing the color change caused by an indicator to determine the endpoint. The method of determining the endpoint by measuring the potential difference has been well established and commercialized; however, the devices that can obtain the endpoint by observing the color change are limited. Consequently, in this study, a simple and precise spectral endpoint detector was manufactured using a drop-counter comprising an infrared emitter and a phototransistor, a white light LED as the light source and photodetector, and an analog-to-digital converter (Arduino). Spectrator, a new named, showed excellent results in terms of the reproducibility of acid–base titration using thymol blue as an indicator. Herein, we present the results of the Spectrator-manufacturing process as well as the experimental results.
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