• 제목/요약/키워드: hydroxide eluent

검색결과 4건 처리시간 0.021초

Ion chromatographic determination of chlorite and chlorate in chlorinated food using a hydroxide eluent

  • Kim, Dasom;Jung, Sungjin;Lee, Gunyoung;Yun, Sang Soon;Lim, Ho Soo;Kim, Hekap
    • 분석과학
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    • 제30권2호
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    • pp.57-67
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    • 2017
  • This study was conducted to develop an analytical technique for determination of chlorite and chlorate concentrations in fresh-cut food and dried fish products by an ion chromatography/conductivity detection method using a hydroxide mobile phase. Deionized water was added to homogenized samples, which were then extracted by ultrasound extraction and centrifuged at high speed (8,500 rpm). Subsequently, a Sep-Pak tC18 cartridge was used to purify the supernatant. Chlorite and chlorate ions were separated using 20 mM KOH solution as the mobile phase and Dionex IonPac AS27 column as the stationary phase. Ethylenediamine was used as sample preservative and dibromoacetate was added to adjust for the disparity in extraction efficiencies between the food samples. The method detection limit) for chlorite and chlorate were estimated to be 0.2 mg/kg and 0.1 mg/kg, respectively, and the coefficient of determination ($r^2$) that denotes the linearity of their calibration curves were correspondingly measured to be 0.9973 and 0.9987. The recovery rate for each ion was 92.1 % and 96.3 %, with relative standard deviations of 7.47 % and 6.18 %, respectively. Although neither chlorite nor chlorate was detected in the food samples, the analytical technique developed in this study may potentially be used in the analysis of disinfected food products.

Ti, Zr 및 Nb의 원통크로마토그라프 분리 (Column Chromatographic Separation of Titanium, Zirconium and Niobium)

  • 이철;임영창;정구순
    • 대한화학회지
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    • 제17권1호
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    • pp.15-19
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    • 1973
  • ${\alpha}-HIBA$를 용리제로한 양이온 교환 수지통을 사용하여 철, 코발트, 니켈, 이트륨 및 희토류 원소와 같은 여러가지 금속의 공존이온으로 부터 티탄, 니오브 및 지르코늄을 함께 분리하는 방법을 발전시켰다. 본 연구의 결과 르코늄의 꼬리끌기현상은 용리전에 행한 수산화침전에 기인하고 있음을 알았다. 예를 들면 지르코늄을 수산화나트륨으로 침전시킬때 다른 저자들의 보고와는 달리 지르코늄은 심한 꼬리끌기현상을 나타냄을 알았다. 본 연구에서는 이러한 꼬리끌기현상을 없애고 또한 이 이온들을 함께 분리하기 위한 목적으로 이온교환법을 적용하였다. 본 방법을 사용한 결과 조사된 지르코늄으로부터 생성된 $^{90m}Y$$^{90}Y$을 방사화학적 순도로 분리할 수 있었다.

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A Simple and Effective Purification Method for Removal of U(VI) from Soil-Flushing Effluent Using Precipitation: Distillation Process for Clearance

  • Hyun-Kyu Lee;Ilgook Kim;In-Ho Yoon;Wooshin Park;Seeun Chang;Hongrae Jeon;Sungbin Park
    • Journal of Radiation Protection and Research
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    • 제48권2호
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    • pp.77-83
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    • 2023
  • Background: The purpose of this study is to purify uranium (U[VI])-contaminated soil-flushing effluent using the precipitation-distillation process for clearance. Precipitation and distillation are commonly used techniques for water treatment. We propose using a combination of these methods for the simple and effective removal of U(VI) ions from soil-flushing effluents. In addition, the U concentration (Bq/g) of solid waste generated in the proposed treatment process was analyzed to confirm whether it satisfies the clearance level. Materials and Methods: Uranium-contaminated soil was decontaminated by soil-flushing using 0.5 M sulfuric acid. The soil-flushing effluent was treated with sodium hydroxide powder to precipitate U(VI) ions, and the remaining U(VI) ions were removed by phosphate addition. The effluent from which U(VI) ions were removed was distilled for reuse as a soil-flushing eluent. Results and Discussion: The purification method using the precipitation-distillation process proposed in this study effectively removes U(VI) ions from U-contaminated soil-flushing effluent. In addition, most of the solid waste generated in the purification process satisfied the clearance level. Conclusion: The proposed purification process is considered to have potential as a soil-flushing effluent treatment method to reduce the amount of radioactive waste generated.

이온 교환수지에 의한 철 및 강의 분석에 관한 연구 (제2보). 음이온 성분의 분리 (The Study on the Separation of the Subsidiary Elements in Iron and Steel by Using Ion Exchangers (II). The Separation of Anions)

  • 이병조;박면용;박기채
    • 대한화학회지
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    • 제17권6호
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    • pp.428-433
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    • 1973
  • 음이온교환수지관(Dowex 1${\times}8,\;20cm{\times}3.14cm^2$)을 통하여 0.1M Si(IV), As(V), P(V), S(VI), W(VI), Cr(VI)의 용액을 각기 1ml씩 취하여 섞은 용액 6ml를 다음과 같은 용리액으로 용리시켜 정량적으로 분리하였다. 이때에 용리액은 Si(IV), As(V), P(V)에 대하여 0.07M 염산과 0.03M 염화나트륨을 섞은 용액(pH 1.3)을, S(VI), W(VI), Cr(VI)에 대하여 0.6M 염화나트륨과 0.3M 수산화나트륨을 섞은 용액을 사용하였다. 이때에 함께 용출된 P(V)와 As(V)의 혼합액은 아황산나트륨용액으로 처리하여 As(V)를 As(III)으로 환원시킨다음 0.1N 아황산나트륨용액(pH 3.48)으로 용리하여 분리하였다. 많은 양의 철(97% 이상)과 Si(IV), As(V), S(VI), P(V), W(VI)이 혼합된 용액은 양이온교환수지관(Dowex 50w${\times}12,\;30cm{\times}3.14cm^2$)을 통하여 디메틸술포옥시드와 질산나트륨의 혼합용리액으로 용리하여 철을 먼저 분리하고 다시 음이온들은 음이온교환수지관을 통하여 분리하였다. 철강중에 들어있는 음이온 성분들도 같은 방법으로 분리할 수 있었다.

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