• Title/Summary/Keyword: Ni(II) complex

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Bis(imino)aryl Complex of Nickel(II): N,C,N-Pincer Type Complex, (2,6-(2,6-Et2PhN=CH)2C6H3)NiBr

  • Lee, Dong-Hwan;Hong, Sung-Won;Park, Soon-Heum
    • Bulletin of the Korean Chemical Society
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    • v.29 no.1
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    • pp.187-190
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    • 2008
  • The synthesis of a novel N,C,N-type pincer, bis(N-aryl)-2-bromoisophthalaldimine 2,6-(2,6-Et2PhN = CH)2C6H3Br (1) and Ni(1)Br (2) is described. They were characterized by elemental analysis and spectroscopic techniques (IR and 1H NMR). Attempted ethylene polymerization catalyzed by 2 has been futile, leading only to the formation of a small amount of oily oligomers.

Characteristics of electrochemical properties polypyrrole (PPy) film doped with Cu(II), Ni(II) by electrochemical cementation process (CEMENTATION 공정으로 Cu(II)와 Ni(II) 이온을 각각 도우핑한 전도성 고분자의 전기화학적 특성 분석)

  • Yun, Dong-Hwa;Jin, Joon-Hyung;Yang, Jung-Hoon;Min, Nam-Ki;Hong, Suk-In
    • Proceedings of the KIEE Conference
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    • 2002.07c
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    • pp.2011-2013
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    • 2002
  • 일반적으로, 전도성 고분자는 금속에 준하는 전기 전도도와 다공성을 이용한 전해질 이온 및 생채 고분자의 물리, 화학적 도우핑 능력을 장점으로 한다. 따라서, 이 분야의 최근 연구동향도 이온 도우핑에 의한 전도성 고분자의 전기 전도도 향상에 초점이 맞추어져 있으며, 이미 다수의 연구진에 의행 여러 가지 방법이 제시되었다. 본 논문은 전기 화학적 cementation 공정을 이용하여 금속 이온을 전도성 고분자에 도우핑하고 특성을 고찰하였다. 전도성 고분자로써 polypyrrole (PPy)을 사용하고, micropaticles (구리와 니켈 이온)를 도펀트 (dopant)로 하여 -1.5 V ${\sim}$ 2V의 범위에서 순환 전압 전류법 (Cyclic voltammetry)을 이용해 organic-inorganic complex를 제작하였고, 각각의 전극을 비교, 분석 하였다. 구리 이온을 도우핑한 PPy 필름은 전기 전도도가 매우 우수하나 대기 중 공기 및 수분에 의해 쉽게 산화되므로 life-time이 짧다. 이를 보완하기 위하여 상대적으로 안정한 니켈 이온을 도우핑한 PPy 필름의 전기 화학적 특성을 고찰하였다. 전극의 표면은 SEM (Scanning Electron Microscopy), EDX (Energy Dispersive X-ray spectroscopy)를 이용하여 분석하였다.

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The Treatment of Heavy Metal-cyanide Complexes Wastewater by Zn$^{+2}$/Fe$^{+2}$ Ion and Coprecipitation in Practical Plant (II) (아연백법 및 공침공정을 이용한 복합 중금속-시안착염 폐수의 현장처리(II))

  • Lee, Jong-Cheul;Lee, Young-Man;Kang, Ik-Joong
    • Journal of Korean Society of Environmental Engineers
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    • v.30 no.5
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    • pp.524-533
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    • 2008
  • Industrial wastewater generated in the electroplating and metal finishing industries typically contain toxic free and complex metal cyanide with various heavy metals. Alkaline chlorination, the normal treatment method destroys only free cyanide, not complex metal cyanide. A novel treatment method has been developed which destroys both free and complex metal cyanide as compared with Practical Plant(I). Prior to the removal of complex metal cyanide by Fe/Zn coprecipitation and removal of others(Cu, Ni), Chromium is reduced from the hexavalent to the trivalent form by Sodium bisulfite(NaHSO$_3$), followed by alkaline-chlorination for the cyanide destruction. The maximum removal efficiency of chromium by reduction was found to be 99.92% under pH 2.0, ORP 250 mV for 0.5 hours. The removal efficiency of complex metal cyanide was max. 98.24%(residual CN: 4.50 mg/L) in pH 9.5, 240 rpm with 3.0 $\times$ 10$^{-4}$ mol of FeSO$_4$/ZnCl$_2$ for 0.5 hours. The removal efficiency of Cu, Ni using both hydroxide and sulfide precipitation was found to be max. 99.9% as Cu in 3.0 mol of Na$_2$S and 93.86% as Ni in 4.0 mol of Na$_2$S under pH 9.0$\sim$10.0, 240 rpm for 0.5 hours. The concentration of residual CN by alkaline-chlorination was 0.21 mg/L(removal efficiencies: 95.33%) under the following conditions; 1st Oxidation : pH 10.0, ORP 350 mV, reaction time 0.5 hours, 2nd Oxidation : pH 8.0, ORP 650 mV, reaction time 0.5 hours. It is important to note that the removal of free and complex metal cyanide from the electroplating wastewater should be employed by chromium reduction, Fe/Zn coprecipitation and, sulfide precipitation, followed by alkaline-chlorination for the Korean permissible limit of wastewater discharge, where the better results could be found as compared to the preceding paper as indicated in practical treatment(I).

Chemical Reactivity between Ni(II)-Macrocycle Complex Ions ($NiL_m{^{2+}}$) and $CN^-$ (Ni(II)-거대고리 리간드 착이온 ($NiL_m{^{2+}}$) 과 $CN^-$ 이온간의 반응성)

  • Yu-Chul Park;Jong-Chul Byun
    • Journal of the Korean Chemical Society
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    • v.31 no.4
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    • pp.334-343
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    • 1987
  • The Chemical reactions between $NiL_m{^{2+}}\{$Ni(rac-1[14]7-diene)^{2+},\;Ni(meso-1[14]7-diene)^{2+},\;Ni(1[14]4-diene)^{2+},\;{\alpha}-Ni(rac-[14]-decane)^{2+},\;{\beta}-Ni(rac-[14]-decane)^{2+},\;and\;Ni(meso-[14]-decane)^{2+}$}\and\ CN^-$ ion were studied by the spectrophotometric method. The equilibrium constants (K_1$) for the 1:1 complex ion, $[NiL_m(CN)]^+\;with\;NiL_m{^{2+}}\;and\;CN^-$ ion were determined in the range of 3 to $25^{\circ}C$. The $K_1\;for\;Ni(rac-1[14]7-diene)^{2+},\;Ni(meso-1[14]7-diene)^{2+},\;Ni(1[14]4-diene)^{2+},\;{\alpha}-Ni(rac-[14]-decane)^{2+},\;{beta}-Ni(rac-[14]-decane)^{2+},\;and\;Ni(meso-[14]-decane)^{2+}\;at\;15^{\circ}C$ was 4.7, 5.3, 6.2, 7.5, 9.4, and 9.8, respectively. The values of $K_1$ decreased with increasing temperature. From the temperature effect on equilibrium constant ($K_1$), thermodynamic parameters $({\Delta}H^{\circ},\;{\Delta}S^{\circ},\;{\Delta}G^{\circ})$ for reaction were evaluated and the reaction of $NiL_m{^{2+}}\;and\;CN^-$ ion was exothermic. $NiL_m{^{2+}\;reacts\;with\;CN^-$ ion to give $Ni(CN)_4{^{2-}}$ ion and macrocyclic ligand $(L_m)$. The kinetics of formation of the $Ni(CN)_4{^{2-}}$ ion of varying the $[CN^-],\;[HCN],\;and\;[OH^-]$ have been investigated at 3∼$25^{\circ}C\;and\;0.5M\;NaClO_4$. Maintaining a constant $[CN^-],\;k_{obs}/[CN^-]^2$ increases linearly with increasing [HCN]. In the presence of large quantities of $[OH^-],\;k_{obs}/[CN^-]^2$ also increases linearly with $[OH^-]$. From the temperature effect on kinetic constant (k_{obs})$, parameter of activation $({\Delta}H^{\neq},\;{\Delta}S^{\neq})$ of reaction of $NiL_m{^{2+}}\;with\;CN^-$ ion were determined. For the $Ni(rac-1[14]7-diene)^{2+},\;Ni(meso-1[14]7-diene)^{2+},\;{\alpha}-Ni(rac-[14]-decane)^{2+},\;{\beta}-Ni(rac-[14]-decane)^{2+},\;and\;Ni(meso-[14]-decane)^{2+}\;series\;{\Delta}H^{\neq}$ gradually decrease as the d-d transition energy, $ν(cm^{-1})$ decrease. And the reaction of the five $NiL_m{^{2+}}\;with\;CN^-$ ion take place by way of equal paths.

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Flow Injection Spectrophotometric Determination of Cobalt with 2-(5-Bromo-2-pyridylazo)-5-(N-propyl-N-sulfopropylamino)aniline (2-(5-브로모-2-피리딜아조)-5-(N-프로필-N-슬포프로필아미노)아닐린을 사용하여 흐름주입법에 의한 코발트의 분광광도법적 정량)

  • Kang, Sam Woo;Kim, In Yong;Han, Hong Seok;Lee, Seung Seok
    • Analytical Science and Technology
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    • v.6 no.1
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    • pp.57-63
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    • 1993
  • Spectrophotometric determination of cobalt by flow injection method is described. 2-(5-Bromo-2-pyridylazo)-5-(N-propyl-N-sulfopropylamino) aniline rapidly forms a water-soluble complex with cobalt in $NH_3-NH_4Cl$ buffer solution at pH 10.5. The absorption maxima of this complex is at 545 nm with molar absorptivity of $58000L\;mol^{-1}\;cm^{-1}$. The calibration curve of cobalt is linear over the range of 0.1 to 0.6ppm and the detection limit is 25ppb. The relative standard deviation is ${\pm}0.72%$ for 0.5ppm and the sampling rate is $60samples\;hr^{-1}$. The interfering effect of some cations and anions was investigated. Ni(II), Cu(II), Fe(III) and $CN^-$ interfered severely. The interfering effect of these matallic ions could be decreased by adding $1.0{\times}10^{-3}M$ EDTA solution to the carrier stream.

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Macrocyclic Tetraamine Bis(isocyanato-N)nickel (II) Complex

  • Park, Ki-Young;Kim, Moon-Jib;Lee, Chang-Hee;Seong, Baek-Seok;Lee, Jin-Ho;Suh, Il-Hwan
    • Korean Journal of Crystallography
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    • v.9 no.2
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    • pp.92-95
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    • 1998
  • The structure of bis(isocyanto-N)nickel (II) complex, [Ni(L)(NCO)2] (L: 2,5,9,12-tetramethyl-1,4,8,11-tetraazacyclotetradecane), is centrosymmetric and the central nickel has an axially elongated octahedral geometry with two nitrogen atoms of the isocyanate ligand.

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Growth and Electrochemical Behavior of Poly[Ni(saldMp)] on Carbon Nanotubes as Potential Supercapacitor Materials

  • Zhang, Yakun;Li, Jianling;Kang, Feiyu;Wang, Xindong;Ye, Feng;Yang, Jun
    • Bulletin of the Korean Chemical Society
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    • v.33 no.6
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    • pp.1972-1978
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    • 2012
  • The polymer of (2,2-dimethyl-1,3-propanediaminebis(salicylideneaminato))-nickel(II), Ni(saldMp), was deposited on multi-walled carbon nanotubes (MWCNTs) substrate by the route of potential linear sweep. The nano structures of poly[Ni(saldMp)] have been obtained by adjusting the monomer concentration of 0.1, 0.2, 0.5, 1.0 and 1.5 mmol $L^{-1}$. The poly[Ni(saldMp)] prepared in acetonitrile solution with monomer concentration of 1.0 mmol $L^{-1}$ shows the fastest growth rate. The effects of potential window on charge-discharge efficiency and electrodeposition scan number on capacitance performance were discussed. Poly[Ni(saldMp)] prepared with less electrodeposition scans exhibits higher capacitance, but this goes against the improvement of the whole electrode capacitance. Sample with 8 deposition scans is the best compromise with the geometric specific capacitance 3.53 times as high as that of pure MWCNTs, and 1.24 times for the gravimetric specific capacitance under the test potential window 0.0-1.0 V.

Optical Absorption and Polarogram of Macrocyclic Nickel (II) Complexes in Polar Solvents (극성용매에서 거대고리 Ni (II) 착물의 광흡수와 폴라로그램)

  • Park Yuj-Chul;Jong-Chul Byun
    • Journal of the Korean Chemical Society
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    • v.31 no.2
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    • pp.168-177
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    • 1987
  • The equilibria of chemical reaction between $\alpha$-Ni(rac-[14]-decane)$^{2+}$ and polar solvents(L; ANT, MFA, DMSO, DMF, and DMA) have been investigated by the spectrophotometric method at $25^{\circ}C$. (The equilibrium constants($K_1$) of) the first step in ANT, MFA, DMSO, DMF, and DMA were 31.0, 27.5, 21.3 15.9, and 6.4, respectively. The smallness of equilibrium constants ($K_2$) of the second step compared with $K_1$, was observed. $\alpha$-Ni(rac-[14]-dacane)$^{2+}$ + L $\leftrightharpoons$ [$\alpha$-Ni(rac-[14]-decane){\cdot}L]$^{2+}$ : $K_1$.[$\alpha$-Ni(rac-[14]-decane){\cdot}L)$^{2+}$+ L $\leftrightharpoons$ [$\alpha$-Ni(rac-[14]-decane){\cdot}$L_2$)$^{2+}$ :$K_2$. The relationship between d-d absorption energy and half-wave potential of complex ions at ACT was considered. Macrocyclic ligands increasing d-d transition energy caused half-wave potentials of Ni(II)-macrocycle to be shifted more positively. The half-wave potentials for Ni(rac-1[14]7-diene)$^{2+}$, Ni(meso-1[14]7-diene)$^{2+}$, Ni(1[14]4-diene)$^{2+}$, $\alpha$-Ni(rac-[14]-decane)$^{2+}$, ${\beta}-Ni(rac-[14]-decane)$^{2+}$, and Ni(meso-[14]-decane)$^{2+}$ reductions were -1.419, -1.431, -1.450, -1.473, and -1.480 (V vs. SCE), respectively. The d-d transition energies ($\nu_{max},\;cm^{-1}$) of the Ni(meso-[14]-decane)$^{2+}$ isomer were discussed with the dielectric constant (${\varepsilon}/{\varepsilon}_0$) of the various solvents, $\nu_{max}(cm^{-1})$ increased with increasing ${\varepsilon}/{\varepsilon}_0$.

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Ion-exchange Separation and Spectrophotometric Determination of Trace Amount of Aluminium with Thorinin the Presence of Triton X-100 (Triton X-100 존재하에 Thorin에 의한 미량의 알루미늄 이온의 분광학적 정량 및 이온-교환 분리)

  • Park, Chan-Il;Cha, Ki-Won;Jung, Duck-Chae
    • Analytical Science and Technology
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    • v.12 no.6
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    • pp.515-520
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    • 1999
  • The spectrophotometric determination of Al(III) with thorin have been investigated. The optimum condition of pH, concentration of ligand and surfactant, and stability were evaluated. The thorin ligand offers selective separation of Al(III) from sample solution containing Fe(III), Ni(II), Cu(II), Pb(II) and Cu(II). Various surfactants were tested and Triton X-100 showed the best stability and the maximum absorbance in an aqueous solution of Al(III)-Thorin-Triton X-100 complex appears about 526 nm. The method was applied for the determination of Al(III) in mixed sample solution. Separation and preconcentration was performed with a short column filled with resorcinol-formaldehyde resin. Control of the pH during the column operation is essential because the adsorption capacities are very sensitive to change in pH. Their separation was carried out in 0.2 M acetic acid-sodium acetate buffer solution (pH 4.5) and 1.0 M $HNO_3$media.

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