• Title/Summary/Keyword: Bare Cell

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Electrocatalytic Effects for the Reduction of Thionyl Chloride in $Li/SOCl_2$ Cell Containing Schiff Base Metal(II) Complexes

  • Kim, Woo-Seong;Chung, Kwang-Il;Kim, Shin-Kook;Jeon, Seung-Won;Kim, Yeon-Hee;Sung, Yung-Eun;Choi, Yong-Kook
    • Bulletin of the Korean Chemical Society
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    • v.21 no.6
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    • pp.571-576
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    • 2000
  • Electrocatalytic effects for the reduction of thionyl chloride in $LiAICI_4/SOCl_2$ electrolyte solution containing Schiff base M(II) (M; Co and Fe) complexes are evaluated by determining kinetic parameters with cyclic voltammetry and chronoamperometry at a glassy carbon electrode. The charge transfer process during the reduction of thionyl chloride is affected by the concentration of the catalyst. The catalytic effects are demonstrated from both a shift of the reduction potential for the thionyl chloride toward a more positive direction and an increase in peak currents. Catalytic effects are larger in thionyl chloride solutions containing the binuclear [M(II) $_2$ (TSBP)] complex rather than mononuclear [M(II)(BSDT)] complexes. Significant improvements in the cell performance have been noted in terms of both thermodynamics and activation energy for the thionyl chloride reduction. The activation energy calculated from the Arrhenius plots is 4.5-5.9 kcal/mole at bare glassy carbon electrodes. The activation energy calculated for the catalyst containing solution is 3.3-4.9 kcalmole, depending on whether the temperature is lowered or rasied.

A Separator with Activated Carbon Powder Layer to Enhance the Performance of Lithium-Sulfur Batteries

  • Vu, Duc-Luong;Lee, Jae-Won
    • Journal of Powder Materials
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    • v.25 no.6
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    • pp.466-474
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    • 2018
  • The high theoretical energy density ($2600Wh\;kg^{-1}$) of Lithium-sulfur batteries and the high theoretical capacity of elemental sulfur ($1672mAh\;g^{-1}$) attract significant research attention. However, the poor electrical conductivity of sulfur and the polysulfide shuttle effect are chronic problems resulting in low sulfur utilization and poor cycling stability. In this study, we address these problems by coating a polyethylene separator with a layer of activated carbon powder. A lithium-sulfur cell containing the activated carbon powder-coated separator exhibits an initial specific discharge capacity of $1400mAh\;g^{-1}$ at 0.1 C, and retains 63% of the initial capacity after 100 cycles at 0.2 C, whereas the equivalent cell with a bare separator exhibits a $1200mAh\;g^{-1}$ initial specific discharge capacity, and 50% capacity retention under the same conditions. The activated carbon powder-coated separator also enhances the rate capability. These results indicate that the microstructure of the activated carbon powder layer provides space for the sulfur redox reaction and facilitates fast electron transport. Concurrently, the activated carbon powder layer traps and reutilizes any polysulfides dissolved in the electrolyte. The approach presented here provides insights for overcoming the problems associated with lithium-sulfur batteries and promoting their practical use.

A Study on the Adherence of Oral Streptococci to Saliva- or Protein-Coated Hydroxyapatite Beads (타액 및 단백 도말한 Hydroxyapatite 비드에 구강 Streptococci의 부착에 관한 연구)

  • 최선진
    • Korean Journal of Microbiology
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    • v.27 no.3
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    • pp.259-264
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    • 1989
  • The adherence of $^{3}H$-labeled oral streptococcal cells to protein-coated hydroxyapatite (HA) beads was studied by a standard adherence assay. The adherence equilibrium for S. mutans 10449 occured in about 2 hrs. The cell numbers adhering to SHA was 50% less than those on bare HA. Sailva from different subjects had varying effect on bacterial adherence. The use of saliva adsorbed with homologouis bacteria decreased S. mutans adherence by 38% ; this indicates the presence of salivary agglutinin in acquired pellicle formed on HA. Animal sera and BSA decreased S. sanguis adherence. BSA concentration as high as 10mg/ml caused up to 87% adherence inhibition. The desorption experiment of adhered bacteria confirmed the previous reports that the adhesive sites on HA beads for S. mutans were different from those for S. sanguis and that S. mutans could enhance the adherence of S. sanguis but not vice versa.

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Flow-Accelerated Corrosion Behavior of SA106 Gr.C Steel in Alkaline Solution Characterized by Rotating Cylinder Electrode

  • Kim, Jun-Hwan;Kim, In-Sup
    • Nuclear Engineering and Technology
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    • v.32 no.6
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    • pp.595-604
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    • 2000
  • Flow-Accelerated Corrosion Behavior of SA106 Gr.C steel in room temperature alkaline solution simulating the CANDU primary water condition was studied using Rotating Cylinder Electrode. Systems of RCE were set up and electrochemical parameters were applied at various rotating speeds. Corrosion current density decreased up to pH 10.4 then it increased rapidly at higher pH. This is due to the increasing tendency of cathodic and anodic exchange half-cell current. Corrosion potential shifted slightly upward with rotating velocity. Passive film was formed from pH 9.8 by the mechanism of step oxidation and the subsequent precipitation of ferrous species into hydroxyl compound. Above pH 10.4, the film formation process was active and the film became stable. Corrosion current density showed increment in pH 6.98 with the rotating velocity, while it soon saturated from 1000 rpm above pH 9.8. This seems that activation process which represents formation of passive film on the bare metal surface controls the entire corrosion process

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Electrocatalytic Reduction of Thionyl Chloride by Schiff Base Metal(II) Complexes (1)

  • Sin, Mi Suk;Kim, U Seong;Jo, Gi Hyeong;Choe, Yong Guk
    • Bulletin of the Korean Chemical Society
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    • v.16 no.3
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    • pp.205-210
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    • 1995
  • Catalytic effects of various Schiff base metal(II) complexes on the reduction of thionyl chloride at glassy carbon electrode are evaluated by determining the kinetic parameters from cyclic voltammetry technique. The charge transfer process is affected strongly by the concentration of catalysts during the reduction of thionyl chloride. The catalytic effects are shown by both a shift of the reduction potential for thionyl chloride toward more positive direction and an increase in peak current. The diffusion coefficient value, Do, of the 8.17 ${\times}$ 10-9 $cm^2/s$ was observed at the bare glassy carbon electrode, whereas larger values (0.9-1.09 ${\times}$ 10-8 $cm^2/s$) were observed at the catalyst supported glassy carbon electrode. Significant improvements in the cell performance have been noted in terms of both exchange rate constants and current densities at glassy carbon electrode.

A Preponderant Enhancement of Conversion Efficiency by Surface Coating of $SnO_2$ Nanoparticles in Organic MK-2 Dye Sensitized Solar Cell

  • Son, Dae-Yong;Lee, Chang-Ryul;Park, Nam-Gyu
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.218-218
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    • 2012
  • Nanocrystalline $SnO_2$ colloids are synthesized by hydrolysis of $SnCl_4{\cdot}5H_2O$ in aqueous ammonia solution. The synthesized $SnO_2$ nanoparticles with ca. 15 nm in diameter are coated on a fluorinedoped thin oxide (FTO) conductive substrate and heated at $550^{\circ}C$. The annealed $SnO_2$ film is treated with aqueous $TiCl_4$ solution, which is sensitzied with MK-2 dye (2-cyano-3-[5'''-(9-ethyl- 9H-carbazol-3-yl)-3',3'',3''',4-tetra-n-hexyl-[2,2',5',2'',5'',2''']-quater thiophen-5-yl]). Compared to bare $SnO_2$ film, the conversion efficiency is significantly improved from 0.22% to 3.13% after surface treatment of $SnO_2$ with $TiCl_4$, which is mainly due to the large increases in both photocurrent density from 1.33 to $9.46mA/cm^2$ and voltage from 315 to 634 mV. It is noted that little change in the amount of the adsorbed dye is detected from 1.21 for the bare $SnO_2$ to $1.28{\mu}mol/cm^2$ for the $TiCl_{4-}$ treated $SnO_2$. This indicates that the photocurrent density increased by more than 6 times is not closely related to the dye loading concentration. From the photocurrent and voltage transient spectroscopic studies, electron life time increases by about 13 order of magnitude, whereas electron diffusion coefficient decreases by about 3.6 times after $TiCl_4$ treatment. Slow electron diffusion rate offers sufficient time for regeneration kinetics. As a result, charge collection efficiency of about 40% before $TiCl_4$ treatment is improved to 95% after $TiCl_4$ treatment. The large increase in voltage is due to the significant increase in electron life time, associated with upward shift of fermi energy.

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Development of High-Efficient Organic Solar Cell With $TiO_2$/NiO Hole-Collecting Layers Using Atomic Layer Deposition

  • Seo, Hyun Ook;Kim, Kwang-Dae;Park, Sun-Young;Lim, Dong Chan;Cho, Shinuk;Kim, Young Dok
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.157-158
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    • 2013
  • Organic solar cell was fabricated using one-pot deposition of a mixture of NiO nanoparticles, P3HT and PCBM. In the presence of NiO, the photovoltaic performance was slightly increased comparing to that of the device without NiO. When $TiO_2$ thin films with a thickness of 2~3 nm was prepared on NiO nanoparticles using atomic layer deposition, the power conversion efficiency was increased by a factor 2.5 with respect to that with bare NiO. Moreover, breakdown voltage of the film consisting of NiO, P3HT, and PCBM on indium tin oxide was increased by more than 1 V in the presence of $TiO_2$-shell on NiO nanoparticles. It is evidenced that S atoms of P3HT can be oxidized on NiO surfaces, and $TiO_2$-shell on NiO nanoparticles. It is evidenced that S atoms of P3HT can be oxidzed on NiO surfaces, and $TiO_2$ shell heavily reduced oxidation of S at oxide/P3HT interfaces. Oxidized S atoms can most likely act as carrier generation sites and recombination centers within the depletion region, decreasing breakdown voltage and performance of organic solar cells. Our result shows that fabrication of various core-shell nanostruecutres of oxides by atomic layer deposition with controlled film thickness can be of potential importance for fabricating highly efficient organic solar cells.

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Growth and Migration of BALB/3T3 Fibroblast Cells on Nano-engineered Silica Beads Surface

  • Kim, Jihee;Chandra, Prakash;Yang, Jiyoon;Rhee, Seog Woo
    • Bulletin of the Korean Chemical Society
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    • v.34 no.12
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    • pp.3715-3721
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    • 2013
  • In this study, the behavior of cells on the modified surface, and the correlation between the modified substrates and the response of cells is described. A close-packed layer of nano-sized silica beads was prepared on a coverslip, and the adhesion, proliferation, and migration of BALB/3T3 fibroblast cells on the silica layer was monitered. The 550 nm silica beads were synthesized by the hydrolysis and condensation reaction of tetraethylorthosilicate in basic solution. The amine groups were introduced onto the surfaces of silica particles by treatment with 3-aminopropyltrimethoxysilane. The close-packed layer of silica beads on the coverslip was obtained by the reaction of the amine-functionalized silica beads and the (3-triethoxysilyl)propylsuccinic anhydride treated coverslip. BALB/3T3 fibroblast cells were loaded on bare glass, APTMS coated glass, and silica bead coated glass with the same initial cell density, and the migration and proliferation of cells on the substrates was investigated. The cells were fixed and stained with antibodies in order to analyze the changes in the actin filaments and nuclei after culture on the different surfaces. The motility of cells on the silica bead coated glass was greater than that of the cells cultured on the control substrate. The growth rate of cells on the silica bead coated glass was slower than that of the control. Because the close-packed layer of silica beads gave an embossed surface, the adhesion of cells was very weak compared to the smooth surfaces. These results indicate that the adhesion of cells on the substrates is very important, and the actin filaments might play key roles in the migration and proliferation of cells. The nuclei of the cells were shrunk on the weakly adhered surfaces, and the S1 stage in which DNA is duplicated in the cell dividing processes might be retarded. As a result, the rate of proliferation of cells was decreased compared to the smooth surface of the control. In conclusion, the results described here are very important in the understanding of the interaction between implanted materials and biosystems.

Electricity Generation by Microbial Fuel Cell Using Microorganisms as Catalyst in Cathode

  • Jang, Jae Kyung;Kan, Jinjun;Bretschger, Orianna;Gorby, Yuri A.;Hsu, Lewis;Kim, Byung Hong;Nealson, Kenneth H.
    • Journal of Microbiology and Biotechnology
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    • v.23 no.12
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    • pp.1765-1773
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    • 2013
  • The cathode reaction is one of the most seriously limiting factors in a microbial fuel cell (MFC). The critical dissolved oxygen (DO) concentration of a platinum-loaded graphite electrode was reported as 2.2 mg/l, about 10-fold higher than an aerobic bacterium. A series of MFCs were run with the cathode compartment inoculated with activated sludge (biotic) or not (abiotic) on platinum-loaded or bare graphite electrodes. At the beginning of the operation, the current values from MFCs with a biocathode and abiotic cathode were $2.3{\pm}0.1$ and $2.6{\pm}0.2mA$, respectively, at the air-saturated water supply in the cathode. The current from MFCs with an abiotic cathode did not change, but that of MFCs with a biotic cathode increased to 3.0 mA after 8 weeks. The coulomb efficiency was 59.6% in the MFCs with a biotic cathode, much higher than the value of 15.6% of the abiotic cathode. When the DO supply was reduced, the current from MFCs with an abiotic cathode decreased more sharply than in those with a biotic cathode. When the respiratory inhibitor azide was added to the catholyte, the current decreased in MFCs with a biotic cathode but did not change in MFCs with an abiotic cathode. The power density was higher in MFCs with a biotic cathode ($430W/m^3$ cathode compartment) than the abiotic cathode MFC ($257W/m^3$ cathode compartment). Electron microscopic observation revealed nanowire structures in biofilms that developed on both the anode and on the biocathode. These results show that an electron-consuming bacterial consortium can be used as a cathode catalyst to improve the cathode reaction.

Molybdenum 후면전극을 통한 CIGS우선배향성의 제어 및 변환효율에 미치는 영향

  • Yun, Ju-Heon;Kim, Jong-Geun;Yun, Gwan-Hui;Park, Jong-Geuk;Kim, Won-Mok;Baek, Yeong-Jun;Seong, Tae-Yeon;Jeong, Jeung-Hyeon
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.368-368
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    • 2011
  • 최근에 보고된 양질의 고효율Cu(In,Ga)Se2 (CIGS) 태양전지는 CIGS광흡수층이 강한 (220:204) 우선배향성을 갖는 것으로 알려져 있다 [1]. 이러한 CIGS우선배향성은 Se 증착압력, Na농도, 기판온도 및 Mo후면전극의 표면상태에 영향을 받는 것으로 알려져 있지만 정확한 상호관계는 아직 명확히 알려져 있지 않으며, 특히 Mo후면전극의 영향에 대해서는 체계적인 연구결과조차 극히 드문 상황이다 [2]. 본 연구에서는 CIGS 박막의 우선배향성에 대해 Mo후면전극의 미세구조가 미치는 영향 및 이에 따른 cell특성의 변화에 대해서 연구하였다. Mo후면전극의 미세구조는 2 mTorr~16 mTorr까지 증착압력을 변화시켜 제어되었고, CIGS광흡수층은 이렇게 준비된 Mo후면전극상에 3단계 동시증밥법(3-stage process)을 사용하여 형성하였다. XRD를 통한 박막의 우선배향성 평가에서, Mo 증착압력에 대한 IGS I(300)/I(006) 및 CIGS I(220:204)/I(112)의 거동은 Mo 미세구조와 밀접한 관련이 있는 잔류응력(residual stress)의 변화 거동과 상당히 일치함을 보였다. 이에 반해, 높은 압력의 Mo위에 형성된 강한 (220:204) 우선배향성의 CIGS와 bare-glass위에서 형성된 강한 (112) 우선배향성의 CIGS내 Na농도는 서로 유사하였다. 상기의 결과는 Mo미세구조 그 자체가 CIGS 박막 우선배향성의 원인이 됨을 나타낸다. Selenized Mo시편의 XRD분석 및 IGS/Mo 시편의 TEM분석결과을 통해 MoSe2의 반응성이 잔류응력과 비례하는 Mo in-gain 밀도에 의존하는 함을 알 수 있었고, 이러한 MoSe2반응성(reactivity)과 IGS우선배향성 사이에 상당히 밀접한 관련이 있으며 이에 CIGS의 우선배향성이 결정됨을 확인하였다. 마지막으로, Mo변수에 의해 제작된 cell의 특성분석으로부터 cell의 효율이 주로 VOC의 증가에 기인하여 CIGS (220:204) 우선배향성의 정도에 비례하였다.

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