• Title/Summary/Keyword: $CoCl_2$

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The Effects of Reductants on the Behaviors of Fe Selective Chlorination using an Ilmenite Ore (일메나이트 광의 Fe 선택염화 거동에 미치는 환원제의 영향에 관한 연구)

  • Son, Yongik;Sohn, Ho-Sang;Jung, Jae-Young
    • Resources Recycling
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    • v.27 no.3
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    • pp.30-38
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    • 2018
  • In this study, the behaviors of Fe selective chlorination in ilmenite ore by using PVC or $CO-Cl_2$ gas mixture as reducing agents under the condition of 1173 K, for 60 minutes were investigated. The weight loss ratio was 28% when PVC was applied as the reducing agent. The condensate formed at the outlet of reaction tube was identified as $FeCl_2$ by X-ray diffraction analysis. From these results, it was observed that iron in ilmenite ore reacted with HCl gas and Fe was selectively removed in the form $FeCl_2$. However, when $CO-Cl_2$ gas mixture was used as a reducing agent, the weight reduction ratio was 54%, and the condensate formed at the outlet of reaction tube after the experiment was estimated to be $FeCl_3$. It was observed that the ilmenite ore reacted with the $CO-Cl_2$ gas mixture and was simultaneously removed in the form of $FeCl_3$ and $TiCl_4$. However, the results of X-ray diffraction of ilmenite ore after the reaction showed that Fe was almost removed.

The Influence for the Change of Chelate Ring of Co (Ⅲ) Complexes Containing EDTA by $Cd^{2+}, H^+, and OH^-$ ($Cd^{2+}, H^+$ 및 OH-이온이 EDTA를 포함한 Co (Ⅲ) 착물의 킬레이트고리 변화에 미치는 영향)

  • Kim, Dong Yeop;Lee, Dong Jin;O, Chang Eon;Do, Myeong Gi
    • Journal of the Korean Chemical Society
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    • v.34 no.2
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    • pp.165-170
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    • 1990
  • The reactivity and structural change of optical active $[Co(edta)]^- and [Co(Hedta)Cl]^- complexes has been investigated in the presence of several catalyst (H^+, OH^-, and Cd^{2+}). When Δ-[Co(edta)]- complex was reacted with H^+ or OH^- as the catalyst, G-ring opening of ligand in the complex was accompanied, and then, optically active, [Co(Hedta)OH_2], and racemic mixture, [Co(edta)OH]_2- were produced. When (-)546-[Co(Hedta)Cl]- complex was reacted with Cd^{2+}$ as the catalyst, the Ring-close was accompanied, and Δ-[Co(edta)]- complex was produced, which the absolute configuration was retained.

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Effects of $CoCl_2$ on Osteogenic Differentiation of Human Mesenchymal Stem Cells

  • Moon, Yeon-Hee;Son, Jung-Wan;Moon, Jung-Sun;Kang, Jee-Hae;Kim, Sun-Hun;Kim, Min-Seok
    • International Journal of Oral Biology
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    • v.38 no.3
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    • pp.111-119
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    • 2013
  • Objective. To investigate the effects of the hypoxia inducible factor-1 (HIF-1) activation-mimicking agent cobalt chloride ($CoCl_2$) on the osteogenic differentiation of human mesenchymal stem cells (hMSCs) and elucidate the underlying molecular mechanisms. Study design. The dose and exposure periods for $CoCl_2$ in hMSCs were optimized by cell viability assays. After confirmation of $CoCl_2$-induced HIF-$1{\alpha}$ and vascular endothelial growth factor expression in these cells by RT-PCR, the effects of temporary preconditioning with $CoCl_2$ on hMSC osteogenic differentiation were evaluated by RT-PCR analysis of osteogenic gene expression, an alkaline phosphatase (ALP) activity assay and by alizarin red S staining. Results. Variable $CoCl_2$ dosages (up to $500{\mu}M$) and exposure times (up to 7 days) on hMSC had little effect on hMSC survival. After $CoCl_2$ treatment of hMSCs at $100{\mu}M$ for 24 or 48 hours, followed by culture in osteogenic differentiating media, several osteogenic markers such as Runx-2, osteocalcin and osteopontin, bone sialoprotein mRNA expression level were found to be up-regulated. Moreover, ALP activity was increased in these treated cells in which an accelerated osteogenic capacity was also verified by alizarin red S staining. Conclusions. The osteogenic differentiation potential of hMSCs could be preserved and even enhanced by $CoCl_2$ treatment.

Reduction of AgCl to Ag by $Na_2CO_3$ ($Na_2CO_3$에 의한 AgCl의 Ag 환원)

  • 박경호;노범식;손정수
    • Resources Recycling
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    • v.5 no.1
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    • pp.29-33
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    • 1996
  • The cominnn plocesses lor rccoremg silver irom silvcr conlaincd waster are the lcachmg silver hy HNO;. the srlcctive precipilillion of sliver ion lo AgCl and thc rcduchon of Ag wrfh ;I proper reductant. In this sludy, thc reduction of AgCI lo Ag was invesllngated by using Na, CO, as a rcd\icta~lt. The variations wcic reaction time. ttmpcrarure thc amount of NalCO, . and the resulls %, ere analyzcd by using sialist~c:d tecl~niques such as the ]polynomial rcgressiun analysis and the response surh~ce method. More than Yh% Ag analyzed was rcduced 1rtm AgCI at 62UT. I hour ullder condillon of 2 stnlchio~nctric ratio of Na iCO, !AgCI.

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Complex Formation of 1,15-Diaza-3,4:12,13-dibenzo-5,8,11-trioxacycloheptadecane with Some Transition Metal Ions (전이금속이온과 1,15-Diaza-3,4:12,13-dibenzo-5,8,11-trioxacycloheptadecane과의 착물형성)

  • Cheul-Gyu Chang;Young-Kook Shin;Si-Joong Kim
    • Journal of the Korean Chemical Society
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    • v.30 no.6
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    • pp.526-531
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    • 1986
  • The stability constants of 1,15-diaza-3,4:12,13-dibenzo-5,8,11-trioxacycloheptadecane (NenOdien H$_4$, L) with transition metal ions such as $Co^{2+},\;Ni^{2+},\;Cu^{2+},\;and\;Zn^{2+}$ have been determined by potentiometry in 95% methanol solution at 25$^{\circ}$C. The complex formation of the NenOdien $_4$ with the transition metal ions depends on the basicity of the donor atoms. The order of complex stability was Co(II) < Ni(II) < Cu(II) > Zn(II). The geometries of the complexes in solid state were discussed by visible-near infrared and infrared spectrophotometry, elemental analysis and electro-conductivity. The results suggest that the geometries of the solid complexes are octahedral for $[CoL_2(OH_2)Cl]Cl{\cdot}2H_2O$, $[NiL_2(OH_2)Cl]Cl{\cdot}2H_2O$, and $[ZnLCl_2]{\cdot}\frac{1}{2}H_2O$ and square pyramidal for [CuLCl]Cl, respectively.

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Homogeneous Catalysis (VI). Hydride Route with Chloro Ligand Dissociation for the Hydrogenation of Acrylonitrile with trans-Chlorocarbonylbis(triphenylphosphine)iridium(I)

  • Moon, Chi-Jang;Chin, Chong-Shik
    • Bulletin of the Korean Chemical Society
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    • v.4 no.4
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    • pp.180-183
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    • 1983
  • The reaction of $IrClH_2(CO)(Ph_3P)_2$ ($Ph_3P$=triphenylphosphine) with acrylonitrile (AN) produces a stoichiometric amount of propionitrile (PN) at $100^{\circ}C$ under nitrogen, which suggests that the catalytic hydrogenation of AN to PN with $IrCl(CO)(Ph_3P)_2$ proceeds through the hydride route where the formation of the dihydrido complex, $IrClH_2(CO)(Ph_3P)_2$ is the initial step. The rate of the hydrogenation of AN to PN with $IrCl(CO)(Ph_3P)_2$ is decreased by the presence of excess $Cl^-$ in the reaction system, which suggests that $Cl^-$ is the dissociating ligand in the catalytic cycle. It has been also found that the rate of the hydrogenation increases with inercase both in hydrogen pressure and in concentration of free $Ph_3P$, and with decrease in AN concentration in the reaction system.

Effects of LED irradiation on the expression of apoptosis-related molecules in human SH-SY5Y neuroblastoma cells

  • Cho, Kyu-Seung;Ryu, Sun-Youl;Choi, Hong-Ran
    • Journal of the Korean Association of Oral and Maxillofacial Surgeons
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    • v.33 no.1
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    • pp.1-10
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    • 2007
  • To verify the inhibitory or protective effects of light-emitting diode(LED) irradiation on apoptotic cell death induced by $CoCl_2$, human SH-SY5Y cells were treated with $CoCl_2$ and LED were used to irradiate the cells. In the cell viability assay, cells were died slowly from $50{\mu}M$ to $250{\mu}M$ and about 50% of cells died after 12 hours at $400{\mu}M$ of $CoCl_2$. The Diff-Quik staining revealed that cells showed condensation of DNA and blebbing of the cell membrane. The DNA fragmentation assay revealed the DNA fragmentation, which is another apoptosis marker, occurred in cells treated with $400{\mu}M$ $CoCl_2$ for 16 hours. In the western blot for HIF-$1{\alpha}$, HIF-$1{\alpha}$ was expressed after 3 hours from induction and peaked maximally at 16 hours. In the cell viability assay of the effects of LED irradiation (at 590 nm for 1 hour 20 minutes), the cells showed more proliferation (about 20%) than the control group. The RPA assay of various apoptosis-related molecules showed that pro-apoptosis molecules such as Bax, Bak, and Bid were upregulated in the $CoCl_2$ treatment group. This means that the apoptotic cell population was increased. However there was some significant changes in LED irradiated cells. In the $CoCl_2$-treated LED irradiation group, those molecules were down-regulated more than in the only $CoCl_2$-treated group. These results have shown that $CoCl_2$ may induce apoptotic cell death in human SH-SY5Y neuroblastoma cells. And LED irradiation has a positive effect on apoptotic cells by down-regulation of pro-apoptotic molecules.

Homogeneous Catalysis (IV). Hydrogenation of Acrylonitrile with trans-Chlorocarbonylbis(triphenylphosphine)rhodium(I)

  • Woo, Jin-Chun;Chin, Chong-Shik
    • Bulletin of the Korean Chemical Society
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    • v.4 no.4
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    • pp.169-171
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    • 1983
  • It has been found that the acrylonitrile solution of trans-$RhCl(CO)(Ph_3P)_2$ produces propionitrile catalytically at $90^{\circ}C$ under $P_{H_2}$=3 atm. This catalytic hydrogenation proceeds only for a certain period of time producing ca. 50 moles of propionitrile per mole of the rhodium complex. The hydrogenation with trans-$RhCl(CO)(Ph_3P)_2$ in the presence of formaldehyde is much faster than in the absence of formaldehyde, and continues without a decrease in the rate for a prolonged period of time. It is suggested that the hydrogenation with trans-$RhCl(CO)(Ph_3P)_2$ proceeds through the unsaturated route initiated by the dissociation of CO from trans- $RhCl(CO)(Ph_3P)_2$ to give coordinatively unsaturated $RhCl(Ph_3P)_2$.

The Effects of Solvent Composition and Pressure on the Rate of Solvolysis of trans-$[Co(en)_2Cl_2]^+$, trans-$[Co(N-eten)_2Cl-2]^+$, trans-$[Co(N-meen)_2Cl-2]^+$ and trans-$[Co(tn)_2Cl-2]^+$ in Aceton-Water Mixture. Excess Free Energy & Free Energy Cycle and Reaction Mechanism (아세톤-물 혼합용매에서 trans-$[Co(en)_2Cl-2]^+$, trans-$[Co(N-eten)_2Cl-2]^+$, trans-$[Co(N-meen)_2Cl_2]^+$, trans-$[Co(tn)_2Cl_2]^+$ 착이온의 가용매 분해반응에 대한 압력과 용매조성의 영향. 반응메카니즘과 자유에너지 변화사이클 및 Excess 자유에너지)

  • Yu-Chul Park;Young-Je Cho
    • Journal of the Korean Chemical Society
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    • v.29 no.6
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    • pp.629-636
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    • 1985
  • The rates of solvolysis of trans-$[Co(AA)_2Cl_2]^+$ in which AA indicates ethylenediamine(en), N-ethylethylenediamine (N-eten), N-methylethylenediamino (N-meen) and trimethylenediamine(tn) respectively have been investigated using conductometric and spectrophotometric methods at various pressure up to 2,000 bar in acetone-water mixture. The activation volumes (${\Delta}V^{\neq}) obtained from the pressure effect on rate constants were -0.2∼0.9 $cm^3mole^{-1}$ for en, -0.2∼0.6 $cm^3mole^{-1}$ for N-eten, -0.8∼6.0 $cm^3mole^{-1}$ for N-meen and 0.7∼7.0$cm^3mole^{-1}$ for tn. The rates of solvolysis of these complexes were analyzed by comparing with the results obtained from excess free energy ($G^E$) and free energy cycle. It was found that $S_N1$ character was increased with decreasing the pressure and increasing the content of acetone in the mixture solvent. In addition to that, the effect of charge separation on the mechanism of solvolysis was discussed.

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Comparision between Synthesis Processes of Ba-Ferrite from Coprecipitates $Fe(OH)_2-BaCO_3$ and $Fe(OH)_3-BaCO_3$ ($Fe(OH)_2-BaCO_3$$Fe(OH)_3-BaCO_3$ 의 공심물로부터 Ba-Ferrite 생성과정의 비교)

  • 김태옥
    • Journal of the Korean Ceramic Society
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    • v.19 no.3
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    • pp.223-228
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    • 1982
  • For the preparation of ferroxidure BaO.5.5 $Fe_2O_3$ with high coercive force, the green and calcined coprecipitates, which were obtained by neutralizing the mixed salt solution $FeCl_2-BaCl_2$ and $FeCl_3-BaCl_2$ with alkali solution $NaOH-Na_2CO_3$, were investigated about the thermal reaction, crystal growth, and the magnetic properties of the sintered specimens. The very single-domain crystallites of Ba-ferrite with high coercive force are formed from the coprecipitate of amorphous $Fe(OH)_3$ and amorphous $BaCO_3$ at lower temperature than that of subnucleus crystalline $\delta$-FeOOH and amorphous $BaCO_3$.

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