• Title/Summary/Keyword: 전기화학적 환원

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Immobilization of Proteins on Silicon Surfaces Using Chemical and Electrochemical Reactions of Nitrobenzenediazonium Cations (나이트로벤젠다이아조늄 양이온의 화학 및 전기화학 반응을 이용한 실리콘 표면상으로의 단백질 고정)

  • Kim, Kyu-Won;Haque, Al-Monsur Jiaul;Kang, Hyeon-Ju
    • Journal of the Korean Electrochemical Society
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    • v.13 no.1
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    • pp.70-74
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    • 2010
  • The immobilization of proteins on silicon surfaces using electrochemical reaction has been studied. Chemical deposition of nitrobenzendiazonium (NiBD) cations is employed to modify silicon surfaces. Electrochemical reduction of nitro-group to primary amine-group have been conducted on the modified surfaces to activate silicon surfaces for the protein immobilization. Attachment of gold nanoparticles was used to prove the reduction. The current method was applied to selective activation of a silicon nanowire and immobilize proteins on the selected nanowire. It has been demonstrated that the use of chemical and electrochemical reaction NiBD is efficient for the selective immobilization of proteins on silicon nanowire surfaces.

Enhanced Electrochemical CO2 Reduction on Porous Au Electrodes with g-C3N4 Integration (g-C3N4 도입에 따른 다공성 Au 전극의 전기화학적 이산화탄소 환원 특성)

  • Jiwon Heo;Chaewon Seong;Jun-Seok Ha
    • Journal of the Microelectronics and Packaging Society
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    • v.31 no.2
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    • pp.78-84
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    • 2024
  • The electrochemical reduction of carbon dioxide (CO2) is gaining attention as an effective method for converting CO2 into high-value carbon compounds. This paper reports a facile meth od for synth esizing and characterizing g-C3N4-modified porous Au (pAu) electrodes for electrochemical CO2 reduction using e-beam deposition and anodization techniques. The fabricated pAu@g-C3N4 electrode (@ -0.9 VRHE) demonstrated superior electrochemical performance compared to the pAu electrode. Both electrodes exhibited a Faradaic efficiency (FE) of 100% for CO production. The pAu@g-C3N4 electrode achieved a maximum CO production rate of 9.94 mg/s, which is up to 2.2 times higher than that of the pAu electrode. This study provides an economical and sustainable approach to addressing climate change caused by CO2 emissions and significantly contributes to the development of electrodes for electrochemical CO2 reduction.

Electrochemical properties of ECD using Titanate nanotube (Titanate nanotube를 이용한 ECD의 전기화학적 특성연구)

  • Oh, Hyo-Jin;Lee, Nam-Hee;Lee, Dae-Girl;Yun, Yeong-Ung;Hwang, Jong-Sun;Kim, Sun-Jae
    • Proceedings of the KIEE Conference
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    • 2009.07a
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    • pp.2119_2120
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    • 2009
  • 전압을 인가하였을 때 전계방향에 의해 가역적으로 색이 변화하는 현상을 전기변색(electrochromism)이라고 한다. 이러한 전기채색현상을 보이는 물질을 전기채색물질(electrochromism materials)이라고 하며, 전기채색 물질에 의한 소자를 전기채색소자(electrochromism device : ECD)라고 한다. 전기채색현상은 투과율(transmittance), 반사율(reflectance)의 가역적이며 가시적인 변화이고, 전기화학적인 산화환원 반응과 관련이 있다. 따라서 본 연구에서는 Titanate nanotube(TNT)를 제조하고 전기변색소자(ECD)에 응용하였다. SEM, XRD, UV-Vis등을 이용하여 재료학적 분석을 시행하였으며, 전기화학적 테스트로 cyclic voltammetry를 측정 하였다. 그 결과 TNT 분말은 직경 약 20~30 nm, 길이 약 500~600 nm 의 입자형상을 나타내었으며, X-선 회절시험결과 $H_2Ti_2O_5{\cdot}H_2O$의 층상구조를 나타내었다. 제조된 막은 FTO glass 위에 PEI/(TNT/TBAOH)$_{n-1}$/PDDA의 순으로 코팅되었다. 전기화학적 테스트를 위하여 2전극 시스템을 제작하였으며, 여러 종류의 액체 전해질을 제작하여 cycle voltammetry를 시행하였다. 그 결과, 각각의 전해질에서 "-"영역의 산화환원전위 피크가 뚜렷하게 나타났으며, 짙은 갈색으로의 채색현상을 나타냈다. 본 연구의 결과로서 TNT 박막을 이용한 ECD은 광조절 유리로서 뿐만 아니라, 여러 전기채색 디바이스에 응용될 것으로 사료된다.

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A study of additives for electro copper deposition by electrochemical methods (전기화학적 분석을 통한 전기동도금 첨가제 연구)

  • Heo, Jin-Yeong;Lee, Chang-Myeon;Gu, Seok-Bon;Jeon, Jun-Mi;Lee, Hong-Gi
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2015.11a
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    • pp.252-252
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    • 2015
  • PCB, 디스플레이, 반도체 등 산업계 전반에서 다양하게 사용되고 있는 전기 동도금액을 대상으로 억제제(Suppressor), 가속제(Accelerator), 레벨러(Leveler) 역할의 첨가제에 대한 전해질 내 반응 경향성을 전기화학적으로 평가하였다. 억제제의 경우 potential이 환원방향으로 증가하여 환원전류가 억제되는 양상의 확인이 가능하였으며, 가속제는 억제제와는 반대로 환원전류가 촉진되는 양상을 보였다. 레벨러의 경우 첨가 농도에 따라 두 가지 특성이 모두 나타남을 알 수 있었다. 첨가제들은 각각 그 역할이 복합적으로 작용되며, 본 연구결과는 전해질의 개발이나 액관리에 있어 다양하게 사용될 수 있을 것으로 기대한다.

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Copper-Based Electrochemical CO2 Reduction and C2+ Products Generation: A Review (구리 기반 전극을 활용한 전기화학적 이산화탄소 환원 및 C2+ 화합물 생성 기술)

  • Jiwon Heo;Chaewon Seong;Vishal Burungale;Pratik Mane;Moo Sung Lee;Jun-Seok Ha
    • Journal of the Microelectronics and Packaging Society
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    • v.30 no.4
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    • pp.17-31
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    • 2023
  • Amidst escalating global warming fueled by indiscriminate fossil fuel consumption, concerted efforts are underway worldwide to mitigate atmospheric carbon dioxide (CO2) levels. Electrochemical CO2 reduction technology is recognized as a promising and environmentally friendly approach to convert CO2 into valuable hydrocarbon compounds, deemed essential for achieving carbon neutrality. Copper, among the various materials used as CO2 reduction electrodes, is known as the sole metal capable of generating C2+ compounds. However, low conversion efficiency and selectivity have hindered its widespread commercialization. This review highlights diverse research endeavors to address these challenges. It explores various studies focused on utilizing copper-based electrodes for CO2 reduction, offering insights into potential solutions for advancing this crucial technology.

Reduced Graphene Oxide / Polyaniline Composite Material for Supercapacitor Electrode (환원된 그래핀 옥사이드/폴리아닐린 복합재료 기반의 슈퍼커패시터용 전극 제조)

  • Jeong, Hyeon Taek;Kim, Se Hyun;Ahn, Won Jun;Choi, Jae Yong;Park, Hyeon Young;Kim, Chang Hyun;Kim, Yong Ryeol
    • Journal of the Korean Applied Science and Technology
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    • v.35 no.4
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    • pp.1088-1095
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    • 2018
  • In this study, reduced graphene oxide/polyaniline composite was fabricated tomaximize their advantages with electrochemical performances and use as a electrodematerial for supercapcaitor. Polyaniline as an electrode material was synthesized bychemical polymerization of aniline monomer and reduced graphene oxide wasintroduced to prepare composite with polyaniline without any pre-treatment. Thereduced graphene oxide, polyaniline and their composite electrodes were fabricatedon gold coated PET(polyethylene terephthalate) substrate through spray coatingmethod which can also apply to industrial scale. we have also prepared reducedgraphene oxide and polyaniline single material electrode to compare theirelectrochemical properties with reduced graphene oxide/polyaniline composite electrode. We have analyzed and compared electrochemical properties of eachelectrodes by using cyclic voltammetry(CV), galvanostaticcharge-discharge(GCD) and electrochemical impedancespectroscopy(EIS) at same condition. As a result, reduced graphene oxide /polyaniline composite electrode showed higher capacitance value more thanpolyaniline and reduced graphene oxide electrode, respectively. Internal resistanceof reduce graphene oxide/polyaniline composite electrode was 24% and 58% lessthan polaniline and reduced graphene oxide electrode respectively. These resultsconsidered that reduced graphene oxide/polyaniline composite electrode has potential ability and enable to apply flexible energy storage and wearable devices.

Electrochemical Reduction on the -S-N= Bond of N-Tert-butylbenzothiazole-2-sulfenamide (N-Tert-butylbenzothiazole-2-sulfenamide의-S-N = 결합에 대한 전기화학적 환원)

  • Kim, Hae-Jin;Jung, Keun-Ho;Choi, Qw-Won;Kim, Il-Kwang;Leem, Sun-Young
    • Journal of the Korean Chemical Society
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    • v.35 no.6
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    • pp.673-679
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    • 1991
  • The electrochemical reduction of N-tert-butylbenzothiazole-2-sulfenamide (TBBS; vulcanization accelerator) was investigated by direct current, differential pulse polarography, cyclic voltammetry and controlled potential coulometry. The electrode reduction of TBBS proceeded E-C-E-C reaction mechanism by four electrons transfer at irreversible one wave (-2.31 volts vs. Ag/0.1M AgN$O_3$ in AN). As the results of controlled potential electrolysis, mercaptobenzothiazole (MBT), benzothiazole disulfide (MBT dimer) and extricated sulfur were products which followed by cleavage of the sulfenamide (-S-N=) bond. Upon the basis of products analysis and polarogram interpretation with pH variable, electrochemical reaction mechanism was suggested.

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Electrochemical Reduction on the -S-N= Bond of N-Oxyldiethylenebenzothiazole-2-sulfenamide (N-Oxyldiethylenebenzothiazole-2-sulfenamide의 -S-N= 결합에 대한 전기화학적 환원)

  • Kim, Hae-Jin;Jung , Keun-Ho;Choi, Qw-Won;Kim, Il-Kwang;Leem, Sun-Young
    • Journal of the Korean Chemical Society
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    • v.35 no.6
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    • pp.680-688
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    • 1991
  • The electrochemical reduction of N-oxyldiethylenebenzothiazole-2-sulfenamide (ODBS; vulcanization accelerator) was investigated by direct current polarography, differential pulse polarography, cyclic voltammetry and controlled potential coulometry. The irreversible electrode reduction of ODBS proceeded E-C-E-C reaction mechanism by three electrons transfer with irreversible one wave (-1.86 volts vs. Ag/0.1 M AgN$O_3$ in AN). As the results of controlled potential electrolysis, mercaptobenzothiazole (MBT), benzothiazole disulfide (MBT dimer) and extricated sulfur were products which followed by cleavage of the sulfenamide (-S-N=) bond. Upo the basis of products analysis and polarogram interpretation witli pH variable, electrochemical reaction mechanism was suggested.

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Studies on the Electrochemical Properties for Rancidity of Linoleic Acid (리놀산의 산패에 대한 전기화학적 특성 연구)

  • 김우성;이송주
    • The Korean Journal of Food And Nutrition
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    • v.13 no.4
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    • pp.360-364
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    • 2000
  • We studied the degree of rancidity of linoleic acid for the electrochemical redox reaction in time course and the kinetic parameters. The current of the linoleic acid was increased and the potential was shifted to the positive potential when scan rates were faster. The redox reaction of the linoleic acid was proceeding to totally irreversible and diffusion controlled reaction. From these results, diffusion coefficient(D$\_$o/) of linoleic acid was observed to 2.61$\times$10$\^$-6/ ㎠/s in the 0.1 M TEAP/DMF electrolyte solution. Also, exchange rate constant(K$\^$o/) was observed to 9.79$\times$10$\^$-11/ cm/s. The leaving time in air condition was found to affect the rancidity. We predicted that the product was carbonyl compounds.

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Synthesis of 1-Benzyl-4-Iodomethyl-2-Azetidinone and Electrochemical Reduction on the Iodo Group (1-Benzyl-4-Iodomethyl-2-Azetidinone의 합성과 Iodo기에 대한 전기화학적 환원반응)

  • Kim Il Kwang;Lee Young Haeng;Lee Chai Ho;Chai Kyu Yun;Kim Yoon Geun
    • Journal of the Korean Chemical Society
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    • v.35 no.1
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    • pp.70-77
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    • 1991
  • 1-Benzyl-4-iodomethyl-2-azetidinone(BIMA) was synthesized and its electrochemical reduction was investigated by direct current, differential pulse polarography, cyclic voltammetry and controlled potential coulometry. The irreversible two electron transfer on reductive dehalogenation of iodo group proceeded to form 1-benzyl-4-methyl-2-azetidinone by EEC electrode reaction mechanism at the first reduction step(-1.35 volts vs. Ag-AgCl). The polarographic reduction waves separated into two reduction steps due to anionic surfactant (sodium lauryl sulfate) effects, while the waves were shifted to the positive potential as the concentration of cationic surfactant (cetyltrimethylammonium bromide) increased. Upon the basis of results on the product analysis and interpretation of polarogram with pH variable, EEC electrochemical reaction mechanism was suggested.

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