• Title/Summary/Keyword: Electrode reusability

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Fabrication of Composite Activated Carbon Electrodes and Sodium Ion Removal by Capacitive Desalination Process (복합 활성탄 전극의 제조 및 축전식 탈염공정 이용 나트륨 이온 제거)

  • Eunsol Wi;Nann Aye Mya Mya Phu;Keunseong Kim;Jeong Woo Yun;Yang-il Huh;Mincheol Chang
    • Composites Research
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    • v.37 no.4
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    • pp.356-362
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    • 2024
  • This study evaluates the efficiency of sodium ion removal using capacitive deionization electrodes made from activated carbon synthesized from aminated rice husk and commercialized activated carbon derived from coconut shell. Composite 1 electrodes, with a 1:1 ratio of activated carbon synthesized from aminated rice husk to commercialized activated carbon, and Composite 2 electrodes, with a 2:1 ratio, were prepared and analyzed for structural changes using SEM and surface area analysis. Sodium ion removal efficiency was assessed over time by varying the composition and voltage of the activated carbon. Composite 2, with a higher activated carbon synthesized from aminated rice husk ratio, demonstrated the highest efficiency, achieving up to 75% removal at 1.2 V. Reusability tests showed that the electrodes maintained over 65% efficiency after seven cycles.

A Study on Manufacture and Design of Low Voltage.Low Electric Power System by PEMFC Single cell (PEMFC 단위 셀의 제작 및 저전압.저전력 시스템 설계에 관한 연구)

  • Ryu, Yun-Sim;Ahn, Ho-Gyun;Seo, Jung-Rang;Kim, Sung-Hoon;Lee, Chang-Ho
    • Proceedings of the KIPE Conference
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    • 2007.11a
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    • pp.193-195
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    • 2007
  • These days, to change the new & renewable energy change the subject because environmental pollution and exhausted fossil power. The most notable Fuel cells by one of the new & renewable energies are one of very useful power conversion sources. Their advantages are low environmental pollution, highly efficient power generation, diversity of fuels (natural gas, LPG, methanol and naphtha), and reusability of exhaust heat, modularity, and faster installation. PEMFC by one of the Fuel Cells is the energy of new technology which is produced by the electric chemical reaction directly. The essential composition elements of PEMFC stack are membrane electrode assembly (MEA), catalyst, Bipolar Plate. Under the this study, know-how is manufacturing single cell of PEMFC and Study design of Low Voltage, Low Electric Power System by PEMFC Single Cell.

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Biomimetic sequestration of $CO_2$ and reformation to $CaCO_3$ using bovine carbonic anhydrase immobilized on SBA-15 (생체모방공학을 이용한 bovine carbonic anhydrase를 SBA-15에 고정화하여 이산화탄소분리와 재구성된 $CaCO_3$ 연구)

  • Vinoba, Mari;Kim, Dae-Hoon;Lim, Kyoung-Soo;Jeong, Soon-Kwan;Alagar, Muthukaruppan
    • Proceedings of the KAIS Fall Conference
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    • 2010.11a
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    • pp.495-499
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    • 2010
  • The biocatalytic capture of $CO_2$, and its precipitationas $CaCO_3$, over bovine carbonic anhydrase (BCA) immobilized on a pore-expanded SBA-15 support was investigated. SBA-15 was synthesized using TMB as a pore expander, and the resulting porous silica was characterized by XRD, BET, IR, and FE-SEM analysis. BCA was immobilized on SBA-15 through various approaches, including covalent attachment (BCA-CA), adsorption (BCA-ADS), and cross-linked enzyme aggregation (BCA-CLEA). The immobilization of BCA on SBA-15 was confirmed by the presence of zinc metal in the EDXS analysis. The effects of pH, temperature, storage stability, and reusability on the biocatalytic performance of BCA were characterized by examining para-nitrophenyl acetate (p-NPA) hydrolysis. The $K_{cat}/K_m$ values for p-NPA hydrolysis were 740.05, 660.62, and $680.11M^{-1}s^{-1}$, respectively, where as $K_{cat}/K_m$ for free BCA was $873.76M^{-1}s^{-1}$. The amount of $CaCO_3$ precipitate was measured quantitatively using anion-selective electrode and was found to be 12.41, 11.82, or 11.28 mg $CaCO_3$/mg for BCA-CLEA, BCA-ADS, or BCA-CA, respectively. The present results indicate that the immobilized BCA-CLEA, BCA-ADS, and BCA-CA are green materials, and are tunable, reusable, and promising biocatalysts for $CO_2$ sequestration.

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A Laboratory-Scale Study of the Applicability of a Halophilic Sediment Bioelectrochemical System for in situ Reclamation of Water and Sediment in Brackish Aquaculture Ponds: Effects of Operational Conditions on Performance

  • Pham, Hai The;Vu, Phuong Ha;Nguyen, Thuy Thu Thi;Bui, Ha Viet Thi;Tran, Huyen Thanh Thi;Tran, Hanh My;Nguyen, Huy Quang;Kim, Byung Hong
    • Journal of Microbiology and Biotechnology
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    • v.29 no.10
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    • pp.1607-1623
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    • 2019
  • Sediment bioelectrochemical systems (SBESs) can be integrated into brackish aquaculture ponds for in-situ bioremediation of the pond water and sediment. Such an in-situ system offers advantages including reduced treatment cost, reusability and simple handling. In order to realize such an application potential of the SBES, in this laboratory-scale study we investigated the effect of several controllable and uncontrollable operational factors on the in-situ bioremediation performance of a tank model of a brackish aquaculture pond, into which a SBES was integrated, in comparison with a natural degradation control model. The performance was evaluated in terms of electricity generation by the SBES, Chemical oxygen demand (COD) removal and nitrogen removal of both the tank water and the tank sediment. Real-life conditions of the operational parameters were also experimented to understand the most close-to-practice responses of the system to their changes. Predictable effects of controllable parameters including external resistance and electrode spacing, similar to those reported previously for the BESs, were shown by the results but exceptions were observed. Accordingly, while increasing the electrode spacing reduced the current densities but generally improved COD and nitrogen removal, increasing the external resistance could result in decreased COD removal but also increased nitrogen removal and decreased current densities. However, maximum electricity generation and COD removal efficiency difference of the SBES (versus the control) could be reached with an external resistance of $100{\Omega}$, not with the lowest one of $10{\Omega}$. The effects of uncontrollable parameters such as ambient temperature, salinity and pH of the pond (tank) water were rather unpredictable. Temperatures higher than $35^{\circ}C$ seemed to have more accelaration effect on natural degradation than on bioelectrochemical processes. Changing salinity seriously changed the electricity generation but did not clearly affect the bioremediation performance of the SBES, although at 2.5% salinity the SBES displayed a significantly more efficient removal of nitrogen in the water, compared to the control. Variation of pH to practically extreme levels (5.5 and 8.8) led to increased electricity generations but poorer performances of the SBES (vs. the control) in removing COD and nitrogen. Altogether, the results suggest some distinct responses of the SBES under brackish conditions and imply that COD removal and nitrogen removal in the system are not completely linked to bioelectrochemical processes but electrochemically enriched bacteria can still perform non-bioelectrochemical COD and nitrogen removals more efficiently than natural ones. The results confirm the application potential of the SBES in brackish aquaculture bioremediation and help propose efficient practices to warrant the success of such application in real-life scenarios.