• 제목/요약/키워드: Supporting electrolyte

검색결과 108건 처리시간 0.026초

The Characteristic Calulation of Carboxylic Ion Exchanger.

  • 손원근;김태일;김상헌;박수길;정장훈
    • Bulletin of the Korean Chemical Society
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    • 제22권6호
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    • pp.559-564
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    • 2001
  • A method for calculating the main characteristics of a potentiometric titration curve in a carboxylic ion exchanger has been investigated. The potentiometric titration curves of simple electrolyte and ion exchangers (polyelectrolytes) showed a great difference between them. The acidity parameters of the ion exchangers, the thermodynamic constant (pK0), apparent equilibrium constant (K), and correction for the apparent equilibrium constant (b), were introduced and used to express the characteristics of the carboxylic ion exchanger. A characteristic equation related to the acidity parameters of the ion exchangers systems was derived. A fibrous carboxylic cation exchanger was used and potentiometric titration curves at different concentrations of the supporting electrolyte were obtained . To prove the validity of the characteristic equation, the concentration of the supporting electroyte was varied. In the present study, good agreement between the data points and the fitted curves was found in all the cases. The g (number of moles of alkali to 1 g of ion exchanger) of carboxylic ion exchanger was calculated from the concentration of supporting electrolyte (C), pH of the solution, and degree of neutralization of ion exchanger (x).

카르복실 이온교환수지의 암모니아 흡착에 대한 전위차 적정곡선 (The Potentiometric Titration Curves on Ammonia Absorption of Carboxylic Ion Exchanger)

  • 김태일;손원근
    • 공업화학
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    • 제10권7호
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    • pp.969-973
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    • 1999
  • 본 연구에서는 카르복실산 약산성 양이온교환수지인 Fiban K-4를 이용하여 $NH_4OH$ 용액에서의 가수분해 정도와 전위차 적정곡선에 의한 암모니아 흡착 특성을 알아보았다. 여러가지 농도의 지지전해질 $(NH_4)_2SO_4$에서 $NH_4OH$의 농도에 따른 pH 값은 실험 값과 이론 값이 잘 일치되었다. 암모니아의 평행 흡착곡선으로부터 pH에 따른 이온교환수지의 $NH_3$ 흡착량을 계산할 수 있었다. 또한 지지전해질의 농도가 낮아지거나 pH가 감소함에 따라 가수분해 정도가 증가하는 것을 알 수 있으며, 전해질의 농도가 감소함에 따라 0.01 M 이하의 모노 이온형태를 갖기 위해서는 pH값을 증가시켜야 하는 것을 알 수 있었다. 그러므로 이들의 결과로부터 전해질의 농도와 pH의 값이 결정된다.

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Investigation of Nickel Removal from Heavy Metal Containing Industrial Wastewater by Electrocoagulation Method

  • Baybars Ali, Fil;Cansu, Elgun;Sevim Alya, Cihan;Sermin, Gunaslan;Alper Erdem, Yilmaz
    • Journal of Electrochemical Science and Technology
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    • 제13권4호
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    • pp.424-430
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    • 2022
  • In the study, Ni2+ (nickel) removal from synthetically prepared wastewater by electrocoagulation method, which is one of the electrochemical treatment processes, was investigated and parameters such as current density, pH, mixing speed, initial Ni2+ concentration, supporting electrolyte type and concentration were determined to determine Ni2+ removal efficiencies effects were studied. Experiment conditions during 30 minutes of electrolysis; the current density was determined as 0.95 mA/cm2, the initial pH of the wastewater was 6, the mixing speed was 150 rpm, and the initial nickel concentration was 250 mg/L. The Ni2+ removal efficiency was obtained as 75.99% under the determined experimental conditions, while the energy consumption was calculated as 3.15 kW-h/m3. In the experiments, it was observed that the type and concentration of the supporting electrolyte did not have a significant effect on the Ni2+ removal efficiency. In the trials where the effect of the support electrolyte concentration was examined, the Ni2+ removal efficiency was 75.99% in the wastewater environment without the supporting electrolyte, while the Ni2+ removal efficiency was 81.55% when 7.5 mmol/L NaCl was used after the 30-minute reaction, and the energy consumption was 2.15 kW-h/m3 obtained as. As a result of the studies, it was concluded that the electrocoagulation process can be applied in the treatment of wastewater containing Ni2+.

Polyoxometalate를 이용한 레독스 흐름전지의 지지 전해질 농도와 성능의 관계 (Relationship between Concentration and Performance of Supporting Electrolyte of Redox Flow Battery Using Polyoxometalate)

  • 조용진;권병완
    • 공업화학
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    • 제34권2호
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    • pp.175-179
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    • 2023
  • 본 연구에서는 음극 활물질로 폴리옥소메탈에이트(polyoxometalate, POM)인 포스포몰리브 산(phosphomolybdic acid)와 양극 활물질로 페로시아나이드(ferrocyanide)를 지지 전해질인 수산화나트륨 수용액을 이용하여 산화환원 흐름 전지(redox flow battery, RFB)를 구성하였다. 다양한 농도의 수산화나트륨 수용액(1.0 M, 1.2 M, 1.4 M, 1.5 M, 1.6 M)을 이용하여 배터리의 성능테스트를 진행하였으며, 각 물질에 대한 전기화학적 특성과 안정성에 대해 연구하였다. 지지 전해질의 농도는 음극 활물질인 포스포몰리브 산에 영향을 주며 최적 값이 존재하고 농도가 증가할수록 전해질 저항이 줄어들게 되며 1.5 M에서 가장 줄어드는 현상을 확인하였고 1.6 M로 농도가 증가할 시 전해질 저항이 다시 증가한다는 것을 확인하였다. 전해질 저항의 감소는 전체 에너지 효율에도 영향을 주어 농도가 증가됨에 따라 효율은 증가하며 1.5 M에서 가장 좋은 배터리 성능을 보인다는 것을 확인하였다.

전기화학적 방법에 의한 타이타늄 분극특성 및 나노메쉬 형성 (Characteristics of titanium polarization curve and formation of nanomesh by electrochemical method)

  • 박진서;김부섭
    • 대한치과기공학회지
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    • 제38권2호
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    • pp.79-84
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    • 2016
  • Purpose: The aim of this study was to make nanomesh on the surface of titanium by potentiostatic technique which was done at the suitable potential level. Methods: In order to find the suitable potential level, use a $25^{\circ}C$ NaCl, NaOH and NH4F solution of 1 M and 5 M as supporting electrolyte, working electrode(positive potential) was contact to the titanium specimen and counter electrode(negative potential) was contact to the Pt substrate. At the transpassive potential which was observed by potentiostatic technique, potentiostatic technique was done for 2hours. Results: As a result, 1 M NaOH solution was suitable as a supporting electrolyte, potentiostatic technique used a $25^{\circ}C$ NaOH solution of 1 M for 2hours, nanomesh was formed. Conclusion: The potentiostatic technique was used $25^{\circ}C$ NaOH solution of 1 M and 5 M as supporting electrolyte for 2hours. Nanomesh was built more uniform and fine in 1 M NaOH solution than 5 M NaOH solution.

고체 고분자 전해질(SPE)을 이용한 전기분해 공정에서 Rhodamine B 분해 (Degradation of Rhodamine B in Water using Solid Polymer Electrolyte (SPE) in the Electrolysis Process)

  • 박영식
    • 한국환경보건학회지
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    • 제40권2호
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    • pp.137-146
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    • 2014
  • Objectives: Feasibility of electrochemical oxidation of the aqueous non-biodegradable wastewater such as cationic dye Rhodamine B (RhB) has been investigated in an electrochemical reactor with solid polymer electrolyte (SPE). Methods: Nafion 117 cationic exchange membrane as SPE has been used. Anode/Nafion/cathode sandwiches were constructed by sandwiching Nafion between two dimensionally stable anodes (JP202 electrode). Experiments were conducted to examine the effects of applied current (0.5~2.0 A), supporting electrolyte type (0.2 N NaCl, $Na_2SO_4$, and 1.0 g/L NaCl), initial RhB concentration (2.5~30.0 mg/L) on RhB and COD degradation and $UV_{254}$ absorbance. Results: Experimental results showed that an increase of applied current in electrolysis reaction with solid polymer electrolyte has resulted in the increase of RhB and $UV_{254}$ degradation. Performance for RhB degradation by electrolyte type was best with NaCl 0.2 N followed by SPE, and $Na_2SO_4$. However, the decrease of $UV_{254}$ absorbance of RhB was different from RhB degradation: SPE > NaCl 0.2 N > $Na_2SO_4$. RhB and $UV_{254}$ absorbance decreased linearly with time regardless of the initial concentration. The initial RhB and COD degradation in electrolysis reaction using SPE showed a pseudo-first order kinetics and rate constants were 0.0617 ($R^2=0.9843$) and 0.0216 ($R^2=0.9776$), respectively. Conclusions: Degradation of RhB in the electrochemical reactor with SPE can be achieved applying electrochemical oxidation. Supporting electrolyte has no positive effect on the final $UV_{254}$ absorbance and COD degradation. Mineralization of COD may take a relatively longer time than that of the RhB degradation.

Corrosion Behavior of Stainless Steel 304, Titanium, Nickel and Aluminium in Non-Aqueous Electrolytes

  • Dilasari, Bonita;Park, Jesik;Kusumah, Priyandi;Kwon, Kyungjung;Lee, Churl Kyoung
    • 전기화학회지
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    • 제17권1호
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    • pp.26-29
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    • 2014
  • The corrosion behavior of stainless steel 304 (SS 304), titanium, nickel and aluminium is studied by immersion and anodic polarization tests in non-aqueous electrolytes. Tetraethyl ammonium tetrafluoroborate is used as a supporting electrolyte in the three kinds of solvents. The immersion test shows that chemical corrosion rate in propylene carbonate-based electrolyte is lower than those in acetonitrile- or ${\gamma}$-butyrolactone-based electrolytes. Surface analyses do not reveal any corrosion product formed after the immersion test. In the anodic polarization tests, a higher concentration of supporting electrolyte gives a higher current density. In addition, a higher temperature increases the current density in the active region and reduces the potential range in the passive region. SS 304 shows the highest corrosion potential while Al shows the lowest corrosion potential and the highest current density in all studied conditions. Based on the conducted corrosion tests, the corrosion resistance of metal substrates in the organic solvents can be sorted in descending order as follows: SS 304 - Ti - Ni - Al.

염화암모늄 전해질에 포함된 퀴논 레독스 활물질 조합을 이용한 수계 레독스 흐름 전지 성능 평가 (Performance Evaluation of Aqueous Redox Flow Battery using Quinone Redox Couple Dissolved in Ammonium Chloride Electrolyte)

  • 이원미;정건용;권용재
    • Korean Chemical Engineering Research
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    • 제57권2호
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    • pp.239-243
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    • 2019
  • 본 연구에서는 Anthraquinone-2,7-disulfonic acid (2,7-AQDS)와 Tiron을 수계 레독스 흐름 전지 음극 및 양극 활물질로 사용하며 기존의 황산 전해질 대신 중성인 염화암모늄 ($NH_4Cl$)을 전해질로 도입하였다. 이렇게 전해질을 변경함으로써, 황산 전해질의 낮은 셀 전압(0.76 V)을 1.01 V까지 향상시킬수 있다. 성능 최적화를 위해 염화암모늄 전해질에 0.1 M로 활물질 농도를 맞춰 컷-오프 전압에 변화를 주며 완전지셀 성능을 평가하였다. 0.2~1.6 V 구간의 컷-오프 전압으로 $40mA/cm^2$ 하에서 20 사이클 동안 완전지셀을 테스트한 결과, 충전 동안 수소가 발생하였다. 이에 컷-오프 전압 조절로 충전 전압을 낮춰서 수소 발생을 제한하고자 0.2~1.2 V 구간으로 $40mA/cm^2$ 하에서 완전지셀 테스트를 진행하였다. 수소 발생은 없었으며, 전류 효율 99%, 방전 용량 3.3 Ah/L의 성능을 보였다.

전기-펜톤 공정에 의한 페놀의 전기화학적 분해 (Electrochemical Degradation of Phenol by Electro-Fenton Process)

  • 김동석;박영식
    • 한국환경보건학회지
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    • 제35권3호
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    • pp.201-208
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    • 2009
  • Oxidation of phenol in aqueous media by electro-Fenton process using Ru-Sn-Sb/graphite electrode has been studied. Hydrogen peroxide was electrically generated by reaction of dissolved oxygen in acidic solutions containing supporting electrolyte and $Fe^{2+}$ was added in aqueous media. Phenol degradation experiments were performed in the presence of electrolyte media at pH 3. Effect of operating parameters such as current, electrolyte type (NaCl, KCl and $Na_2SO_4$) and concentration, $Fe^{2+}$ concentration, air flow rate and phenol concentration were investigated to find the best experimental conditions for achieving overall phenol removal. Results showed that current of 2 A, NaCl electrolyte concentration of 2g/l, 0.5M concentration of $Fe^{2+}$, air flow rate of 1l/min were the best conditions for mineralization of the phenol by electro-Fenton.

The characteristics of polymer electrolyte for lithium polymer battery

  • Park Soo-Gil;Park Jong-Eun;Lee Ju-Seong
    • 전기화학회지
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    • 제2권1호
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    • pp.1-4
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    • 1999
  • 리튬이차전지는 충방전의 반복 동안의 액체전해질과 리튬음극과의 반응으로 수지상결정의 성장으로 리튬이 차전지에 있어서 안전성의 문제를 일으킨다. 고분자 전해질은 수지상 결정 형성을 억제하며 전해질에 성능을 향상시키는 연구가 활발히 진행중이다. 본 연구에서는 겔 전해질에 $Al_2O_3$를 첨가하여 전해질의 표면구조와 임피던스 특성을 조사하였다. 리튬이온의 수율은 $10wt\%\;PAN-Al_2O_3$ 전해질에 5mV의 전압을 인가했을 때 0.29였고 전해질의 이온전도도는 상온에서$2.3\times10^{-4} S/cm$였다. 무기 충진제가 고분자 전해질에 첨가되었을 때 이온전도도 및 이온수율은 무기 충진제가 첨가되지 않은 것보다 높게 나타났다.