• Title/Summary/Keyword: $C_6H_6$

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Characterization of 6H-SiC Single Crystals grown by Sublimation Method

  • Kim, Hwa-Mok;Kang, Seung-Min;Kyung Joo;Auh, Keun-Ho
    • Proceedings of the Korea Association of Crystal Growth Conference
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    • 1997.06a
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    • pp.261-263
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    • 1997
  • 6H-SiC single crystals were successfully grown by the self-designed sublimation apparatus and the optimum growth condition was established. The grown SiC crystals were about 33mm in diameter and 10mm in length. Carrier concentration and doping type of undopped 6H-SiC wafer grown by sublimation method were 1016∼1017/㎤ and n-type Crystallinity of grown 6H-SiC wafer was better than of Acheson seed by data of Raman spectroscopy and Double Crystal XRD. We continue to characterize the grown 6H-SiC wafer in more detail and so we will grow the high-quality 6H-SiC single crystal wafer.

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A Study on the Chemical Composition and Structure of Sludge, Compost and Charcoal (폐수처리 슬럿지와 퇴비 및 목탄의 화학적 특성과 구조에 관한 연구)

  • 임기표;위승곤
    • Journal of Korea Technical Association of The Pulp and Paper Industry
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    • v.35 no.1
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    • pp.27-32
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    • 2003
  • To understand the chemical structure of sewer sludge in comparison with commercial compost and charcoal used as a soil improver, it was carried out to analyse their ash contents and metal ions, and to elucidate the chemical structure of their residuals after a sequential treatment of alcohol-benzene(1:2) extraction in Soxhlet, 3% HCl reflux and 79% H₂SO₄ hydrolysis, using CHNS analyzer and solid C-13 NMR spectrometer. The results obtained were as follows: 1. Ash content of sludge was about 46% that is higher than those of compost (17%) and charcoal (4%). 2. The residual of sludge after a sequential treatment of HCl and H₂SO₄ hydrolyses had high ash content about 23%, too. 3. The sludge seems to be suitable to the soil improver because the content of heavy metal ions in sludge was near the compost and below the organic fertilizer standard. 4. Elemental composition of sludge residual after HCl-H₂SO₄ hydrolyes was C/sub 56/H/sub 91/O/sub 12/N₂S = (C/sub 6/H/sub 10/O/sub 5/)/sub 7/(C/sub 6/H₄)/sub 7/C₂H/sub 43/O₂N₂S, similar to C/sub 103/H/sub 122/O/sub 33/N/sub 6/S = (C/sub 6/H/sub 10/O/sub 5/)/sub 6/(C/sub 6/H₄)/sub 10/C/sub 7/H/sub 22/O₃N/sub 6/S of compost. 5. The sludge residual had proved to have both considerable aliphatic and aromatic groups, but the compost residual to have mainly aliphatic groups and the charcoal to have mainly aromatic groups, through the peak analysis of solid C-13 NMR charts. 6. So, the sewer sludge is proved to have a considerable amount of aromaticity like in woody biomass containing lignin.

Expression of C6orf62 in Human Embryonic Stem Cells and Cancer Cells (인간 배아 줄기세포와 암 세포에서의 C6orf62의 발현 패턴)

  • Yoo, Han-Na;Yoo, Jung-Ki;Choi, Seoung-Jun;Kim, Jin-Kyeoung
    • Reproductive and Developmental Biology
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    • v.34 no.3
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    • pp.229-233
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    • 2010
  • Pluripotency and self-renewal capacity of human embryonic stem cells (hESCs) are retained by hESCs related genes as OCT4, SOX2 and NANOG. These genes are shown high expression level in diverse cancer cells and have potential role in the carcinogenesis. On the contrary to this, several genes which are up-regulated in the differentiated hESCs are involved to suppress the carcinogenesis or proliferation of cells. We discovered several genes in immortalized lung fibroblast (WI-38 VA13) by suppression subtractive hybridization. Among them, we focused chromosome 6 open reading frame 62 (C6orf62) which is uncharacterized, mapped to 6p22.3 and generated to Hepatitis B virus X-transactivated proteins (HBVx-transactivated proteins, XTP). Aim of this study was to characterize C6orf62 through analyzing of expression pattern in various cell lines. Expression of C6orf62 was significantly upregulated in diverse normal cell lines than cancer cell lines. And C6orf62 was up-regulated in differentiated hESCs (endothelial cells, neural cells) compared to those of undifferentiated hESCs. Also, C6orf62 in WI-38 cells was highly up-regulated during G1/S transition of the cell cycle. Taken together, C6orf62 is shown expression pattern similar to differentiated hESCs-associated genes which down-regulated in cancer cells. Therefore, we assume that C6orf62 may participate to suppress the proliferation and to induce differentiation through regulating the cell cycle.

Analytical Expressions for Breakdown Voltage and Specific On-Resistance of 6H-SiC PN Diodes (6H-SiC PN 다이오드의 항복전압과 온-저항을 위한 해석적 표현)

  • Chung, Yong-Sung
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.46 no.6
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    • pp.1-5
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    • 2009
  • Analytical expressions for breakdown voltage and specific on-resistance of 6H-SiC PN diodes have been derived successfully by extracting an effective ionization coefficient from ionization coefficients for electron and hole in 6H-SiC. The breakdown voltages induced from our analytical model are compared with experimental results. The variation of specific on-resistance as a function of doping concentration is also compared with the one reported previously. Good fits with experimental results are found for the breakdown voltage within 10% in error for the doping concentration in the range of $10^{15}{\sim}10^{18}cm^{-3}$. The analytic results show good agreement with the numerical data for the specific on-resistance in the region of $5{\times}10^{15}{\sim}10^{16}cm^{-3}$.

Catalytic Reactions of 3-Phenyl-2-propen-1-ol with Perchloratocarbonylbis (triphenylphosphine) rhodium (I)$^\dag$

  • Park, Jeong-Han;Chin, Chong-Shik
    • Bulletin of the Korean Chemical Society
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    • v.8 no.4
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    • pp.324-328
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    • 1987
  • Reaction of Rh $(ClO_4)(CO)(PPh_3)_2$ (1) with trans-$C_6H_5CH = CHCH_2OH$ (2) produces a new cationic rhodium(Ⅰ) complex, $[Rh(trans-C_6H_5CH = CHCHO)(CO)(PPh_3)_2]ClO_4$ (3) where 2 is coordinated through the oxygen atom but not through the olefinic group. At room temperature under nitrogen, complex 1 catalyzes dehydrogenation, hydrogenolysis, and isomerization of 2 to give $trans-C_6H_5CH$ = CHCHO (4), trans-$C_6H_5CH = CHCH_3$ (5) and $C_6H_5CH_2CH_2CHO$ (6), respectively, and oligomerization of 2 whereas under hydrogen, complex 1 catalyzes hydrogenation of 2 to give $C_6H_5CH_2CH_2CH_2OH$ (7) and hydrogenolysis of 2 to 5 which is further hydrogenated to $C_6H_5CH_2CH_2CH_3$ (8). The dehydrogenation and hydrogenolysis of 2 with 1 suggest an interaction between the rhodium and the oxygen atom of 2, whereas the isomerization and hydrogenation of 2 with 1 indicate an interaction between the rhodium and the olefinic system of 2.

Study on Rumen Cellulolytic Bacterial Attachment and Fermentation Dependent on Initial pH by cPCR (cPCR 기법을 이용한 초기배양 pH에 의한 반추위 섬유소 분해 박테리아의 부착 및 발효에 관한 연구)

  • Kim, M.S.;Sung, H.G.;Kim, H.J.;Lee, Sang-S.;Chang, J.S.;Ha, J.K.
    • Journal of Animal Science and Technology
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    • v.47 no.4
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    • pp.615-624
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    • 2005
  • The cPCR technique was used to monitor rumen fermentation and attachment of Fibrobacter succinogenes to cellulose at different pH in the in vitro culture medium. The target fragments of 16S rDNA(445 bp) were amplified from genomic DNA of F. succinogenes with specific primers and internal controls(205 bp) were constructed. Cell counts were estimated from the amounts of genomic DNA, which was calculated from cPCR results. F. succinogenes in pH 6.8 and 6.2 showed apparently higher attachment than in pH 5.8 during all incubation time. There were some difference between pH 6.8 and 6.2 in the degree of attachment, but the different was not significant (P>0.05). Cellulose degradation increased in process of incubation time and the increasing rate was higher when initial pH was higher. The pH in culture medium decreased regardless of initial pH in course of incubation time. After 24 h of incubation, medium pH was dropped by 0.24, 0.58 and 0.16 units from original medium pH 6.8, 6.2 and 5.8, respectively. More gas was produced at higher initial pH in the same manner as in cellulose degradation. In summery, Initial pH of rumen culture in vitro significantly influenced cellulose digestion, gas production, pH change and bacterial attachment. Especially, low pH(5.8) resulted in much lower bacterial attachment and fiber digestion compared to higher medium pH.

Isolation and Structure of cis,fac -Dibromooxotris(2,6-dimethylphenyl isocyanide)molybdenum(IV), cis,fac-$[Mo(O)Br_2(CN-C_6H_3-2,6-Me_2)_3]$ (cis,fac-Dibromooxotris(2,6- dimethylphenyl isocyanide)molybdenum (IV), cis,fac-$[Mo(O)Br_2(CN-C_6H_3-2,6-Me_2)_3]$의 분리 및 구조)

  • 이범준;한원석;이순원
    • Korean Journal of Crystallography
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    • v.13 no.2
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    • pp.82-85
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    • 2002
  • From the reaction of cis,cis,trans- [MoBr/sub 2/(CO)/sub 2/(PPh/sub 3/)/sub 2/]with 2,6-dimethylphenyl isocyanide, a molybdenum oxohaloisocyanide compound cis,fac-[Mo(O)Br/sub 2/,(CN-C/sub 6/H/sub 3/,-2,6-Me/sub 2/)sub 3/] (1) was iso-lated. Compound 1 was characterized by spectroscopy (/sup 1/H-NMR, /sup 13/C{/sup 1/H}-NMR, IR) and X-ray diffraction. Crystallographic data for 1: triclinic space group P(equation omitted), a=9.172(2) (equation omitted), b = 11.550(3) (equation omitted), c = 15.106(3) (equation omitted), α = 100.44(2)°, β= 107.12(2)°, γ= 107.83(1)°, Z = 2, R(wR/sub 2/) = 0.0529(0.1344).

Assembly of Six-Membered Vanadium Borophosphate Cluster Anions: Synthesis and Structures of (NH4)2(C2H10N2)6[BaH2O)5]2[V2P2BO12]6.8H2O and (NH4)8(C3H12N2)4[Ba(H2O)7][V2P2BO12]6.17H2O

  • Yun, Ho-Seop;Do, Jung-Hwan
    • Bulletin of the Korean Chemical Society
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    • v.26 no.1
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    • pp.146-150
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    • 2005
  • Two new barium vanadium borophosphate compounds, $(NH_4)_2(C_2H_{10}N_2)_6[Ba(H_2O)_5]_2[V_2P_2BO_{12}]_6{\cdot}8H_2O$, Ba- VBPO1 and $(NH_4)_8(C_3H_{12}N_2)_4[Ba(H_2O)_7][V_2P_2BO_{12}]_6{\cdot}17H_2O$, Ba-VBPO2 have been synthesized by interdiffusion methods in the presence of diprotonated ethylenediamine and 1,3-diaminopropane. Compound Ba-VBPO1 has an infinite chain anion (${[BaH_2O)_5]_2[V_2P_2BO_{12}]_6}$$^{14-}$, whereas Ba-VBPO2 has a discrete cluster anion {[$Ba(H_2O)_7][V_2P_2BO_{12}]_6$}$^{16-}$. Crystal Data: $(NH_4)_2(C_2H_{10}N_2)_6[Ba(H_2O)_5]_2[V_2P_2BO_{12}]_6{\cdot}8H_2O$, triclinic, space group P$\overline{1}$ (no. 2), a = 13.7252(7) $\AA$, b = 15.7548(8) $\AA$, c = 15.8609(8) $\AA$, α = 63.278(1)$^{\circ}$, $\beta$ = 75.707(1)$^{\circ}$, $\gamma$ = 65.881(1)$^{\circ}$, Z = 1; $(NH_4)_8(C_3H_{12}N_2)_4[Ba(H_2O)_7][V_2P_2BO_{12}]_6{\cdot}17H_2O$, monoclinic, space group C2/c (no. 15), a = 31.347(2) $\AA$, b = 17.1221(9) $\AA$, c = 22.3058(1) $\AA$, $\beta$ = 99.303(1)$^{\circ}$, Z = 4.