• Title/Summary/Keyword: Electrocatalytic reaction

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Production of (R)-(-)-mandelic acid by electrochemically driven enzyme bioreactor

  • Kim, Mi-Hae;Yun, Se-Eok
    • 한국생물공학회:학술대회논문집
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    • 2001.11a
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    • pp.642-645
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    • 2001
  • Enterococcus faecalis was cultivated under oxidative conditions established by adding some oxidants. FAD and lipoic acid either stimulate the biosynthesis of benzoylformate reductase or stabilize the enzyme, while $MV^{2+}$ enhance the biosynthesis of the oxidoreductase but destabilize it. Since $MV^{2+}$ destabilize the benzoylformate reductase, substituting FAD for $MV^{2+}$ as a redox mediator would be desirable. Production of (R)-(-)-mandelic acid by a coupled reaction between the enzymatic reaction using benzoylformate reductase and the electrocatalytic reduction under the conditions of 1.5 U LiDH $ml^{-1}$, 0.2 mM FAD, and 0.3 mM $NAD^+$ is now performing.

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Binder-Free Synthesis of NiCo2S4 Nanowires Grown on Ni Foam as an Efficient Electrocatalyst for Oxygen Evolution Reaction

  • Patil, Komal;Babar, Pravin;Kim, Jin Hyeok
    • Korean Journal of Materials Research
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    • v.30 no.5
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    • pp.217-222
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    • 2020
  • The design and fabrication of catalysts with low-cost and high electrocatalytic activity for the oxygen evolution reaction (OER) have remained challenging because of the sluggish kinetics of this reaction. The key to the pursuit of efficient electrocatalysts is to design them with high surface area and more active sites. In this work, we have successfully synthesized a highly stable and active NiCo2S4 nanowire array on a Ni-foam substrate (NiCo2S4 NW/NF) via a two-step hydrothermal synthesis approach. This NiCo2S4 NW/NF exhibits overpotential as low as 275 mV, delivering a current density of 20 mA cm-2 (versus reversible hydrogen electrode) with a low Tafel slope of 89 mV dec-1 and superior long-term stability for 20 h in 1 M KOH electrolyte. The outstanding performance is ascribed to the inherent activity of the binder-free deposited, vertically aligned nanowire structure, which provides a large number of electrochemically active surface sites, accelerating electron transfer, and simultaneously enhancing the diffusion of electrolyte.

High Electrochemical Activity of Bi2O3-based Composite SOFC Cathodes

  • Jung, Woo Chul;Chang, Yun-Jie;Fung, Kuan-Zong;Haile, Sossina
    • Journal of the Korean Ceramic Society
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    • v.51 no.4
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    • pp.278-282
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    • 2014
  • Due to high ionic conductivity and favorable oxygen electrocatalysis, doped $Bi_2O_3$ systems are promising candidates as solid oxide fuel cell cathode materials. Recently, several researchers reported reasonably low cathode polarization resistance by adding electronically conducting materials such as (La,Sr)$MnO_3$ (LSM) or Ag to doped $Bi_2O_3$ compositions. Despite extensive research efforts toward maximizing cathode performance, however, the inherent catalytic activity and electrochemical reaction pathways of these promising materials remain largely unknown. Here, we prepare a symmetrical structure with identically sized $Y_{0.5}Bi_{1.5}O_3$/LSM composite electrodes on both sides of a YSZ electrolyte substrate. AC impedance spectroscopy (ACIS) measurements of electrochemical cells with varied cathode compositions reveal the important role of bismuth oxide phase for oxygen electrocatalysis. These observations aid in directing future research into the reaction pathways and the site-specific electrocatalytic activity as well as giving improved guidance for optimizing SOFC cathode structures with doped $Bi_2O_3$ compositions.

TiO2@carbon Core-Shell Nanostructure Electrodes for Improved Electrochemical Properties in Alkaline Solution

  • Kim, Do-Young;Lee, Young-Woo;Han, Sang-Beom;Ko, A-Ra;Kim, Hyun-Su;Kim, Si-Jin;Oh, Sang-Eun;Park, Kyung-Won
    • Journal of the Korean Electrochemical Society
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    • v.15 no.2
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    • pp.90-94
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    • 2012
  • We report nanostructure electrodes with $TiO_2$ as a core and carbon as a shell ($TiO_2$@C) for oxygen reduction in alkaline solution. The structure of core-shell electrodes is characterized by transmission electron microscopy, Raman spectroscopy, X-ray diffraction method, and X-ray photoelectron microscopy. The electrochemical properties of the $TiO_2$@C electrodes are characterized using a potentiostat and compared with those of carbon supported Pt catalyst. In particular, the core-shell electrode with dominant pyridinic-N component exhibits an imporved electrocatalytic activity for oxygen reduction reaction in alkaline solution.

Highly Durable Pt catalyst Supported on the Hybrid Carbon Materials for Polymer Electrolyte Membrane Fuel Cell (탄소계 복합담지체에 담지된 고내구성 고분자전해질 연료전지용 백금촉매)

  • Park, Hyang Jin;Hur, Seung Hyun
    • Journal of the Korean Electrochemical Society
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    • v.17 no.3
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    • pp.201-208
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    • 2014
  • A Pt catalyst ($Pt/G_xC_y$) supported on the hybrid supporting materials composed of graphene oxide (GO) and carbon black (C) was fabricated using polyol method to improve the durability of electrocatalysts. The electrochemical performances measured by cyclic voltammograms using three-electrode system revealed that the properly designed $Pt/G_xC_y$ catalyst exhibited higher durability than that of Pt/C catalyst without sacrificing an electrocatalytic acivity. In the oxygen reduction reaction (ORR) performed in acid solution with the rotating disk electrode, the $Pt/G_xC_y$ catalyst showed greater mass and area-specific activity than those of Pt/C catalyst.

Transformation of Nitrogen in the Form of Nitrate into Ammonia by Electrochemical Reaction (전기화학적 반응을 이용한 질산성 질소의 암모니아성 질소로 전환)

  • Lee, Jae Kwang;Kim, Doyeon;Tak, Yongsug
    • Korean Chemical Engineering Research
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    • v.46 no.5
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    • pp.1013-1016
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    • 2008
  • Nitrogen in the form of nitrate was electrochemically reduced with different cathode materials including Fe, Ni, Cu, and Zn. Zn cathode shows the greatest electrocatalytic activity on the transformation of nitrate ions into ammonia and the $NO_3^-$ removal efficiency has highest value at pH 8.5. Nitrogen in the form of nitrate was initially reduced into nitrite and sequentially, converted into nitrogen inside $NH_3$. Nitrogen in the form of ammonia was completely removed by the reaction with HOCl.

Rational Design of Binder-Free Fe-Doped CuCo(OH)2 Nanosheets for High-Performance Water Oxidation

  • Patil, Komal;Jang, Su Young;Kim, Jin Hyeok
    • Korean Journal of Materials Research
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    • v.32 no.5
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    • pp.237-242
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    • 2022
  • Designing and producing a low-cost, high-current-density electrode with good electrocatalytic activity for the oxygen evolution reaction (OER) is still a major challenge for the industrial hydrogen energy economy. In this study, nanostructured Fe-doped CuCo(OH)2 was discovered to be a precedent electrocatalyst for OER with low overpotential, low Tafel slope, good durability, and high electrochemically active surface sites at reduced mass loadings. Fe-doped CuCo(OH)2 nanosheets are made using a hydrothermal synthesis process. These nanosheets are clumped together to form a highly open hierarchical structure. When used as an electrocatalyst, the Fe-doped CuCo(OH)2 nanosheets required an overpotential of 260 mV to reach a current density of 50 mA cm-2. Also, it showed a small Tafel slope of 72.9 mV dec-1, and superior stability while catalyzing the generation of O2 continuously for 20 hours. The Fe-doped CuCo(OH)2 was found to have a large number of active sites which provide hierarchical and stable transfer routes for both electrolyte ions and electrons, resulting in exceptional OER performance.

Electropolymerization Mechanism for Poly(o-phenylenediamine) (PPD) and Its Electrocatalytic Behavior for $O_2$ Reduction

  • Jang, Dong Hun;Yu, Yong Seop;O, Seung Mo
    • Bulletin of the Korean Chemical Society
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    • v.16 no.5
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    • pp.392-397
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    • 1995
  • o-Phenylenediamine (o-PD) was electropolymerized on glassy carbon electrodes under a potential cycling condition. The resulting polymer films mediated electrons for the reduction of molecular oxygen at pH=1.0. It was found from the RDE, RRDE, and cyclic voltammetry experiments that the modified electrodes reduce oxygen to hydrogen peroxide at about 300 mV lower potential than the bare glassy carbon electrode. The polymer film consisted of more than two components. Among those, only one component was active in oxygen reduction, which was formed mainly in the earlier stage of the electropolymerization. 2,3-Diaminophenazine, a cyclic dimer of o-PD, was also active in the oxygen reduction reaction, from which it was suggested that the active polymeric component has a structural unit similar to the cyclic dimer. Finally, the electropolymerization mechanism for the formation of the active and inactive components has been proposed.

Electrocatalytic Reduction of Dioxygen at Glassy Carbon Electrodes with Irreversible Self-assembly of N-hexadecyl-N'-methyl Viologen

  • Lee, Chi-Woo;Jang, Jai-Man
    • Bulletin of the Korean Chemical Society
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    • v.15 no.7
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    • pp.563-567
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    • 1994
  • The electroreduction of dioxygen at glassy carbon electrodes with irreversible self-assembly of N-hexadecyl-N'-methyl viologen $(C_{16}VC_1)$ proceeds at potentials more positive than those where the reduction occurs at bare electrodes. The electrocatalyzed reduction takes place at potentials well ahead of those where the catalyst is reduced in the absence of dioxygen and the limiting currents observed at rotating disk electrodes did not deviate from the thoretical Levich line up to 6400 rpm, indicating that the electrocatalysis is extremely rapid. The rate constant for the heterogeneous reaction between $C_{16}V^+C_1$ immobilized on the electrode surface and $O_2$ in solution was estimated to be ca. $10^8\;M^{-1}s^{-1}$. The half-wave potential of dioxygen reduction was independent of solution pH.

Enhanced CO2 electrocatalytic conversion via surface treatment employing low temperature plasma (플라즈마 표면처리를 통한 CO2 전기화학적 전환 촉매성능 개선)

  • Choi, Yong-Wook
    • Journal of Surface Science and Engineering
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    • v.55 no.5
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    • pp.261-272
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    • 2022
  • CO2 electroreduction is considered as a means to overcome climate change by converting CO2 into value-added chemicals and liquid fuels. Although numerous researchers have screened versatile metal for the use of electrodes, and looked into the reaction mechanism, it is still required to develop highly enhanced electrocatalyst for CO2 reduction to reach beyond lab-scale. Plasma treatment applying onto the surface of meal electrodes could improve activity, selectivity and stability of the electrocatalysts. This review highlights the effect of plasma pretreatment, and provides insight to design suitable CO2 electrocatalyst.