• 제목/요약/키워드: green-rust

검색결과 41건 처리시간 0.021초

Aqueous U(VI) removal by green rust and vivianite at phosphate-rich environment

  • Sihn, Youngho;Yoon, In-Ho
    • Membrane and Water Treatment
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    • 제11권3호
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    • pp.207-215
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    • 2020
  • Vivianite (Fe32+(PO4)2·8H2O) and green rust ([Fe42+Fe23+(OH)-12][SO42-·2H2O]2-), ferrous containing minerals, could remove aqueous U(VI) in 5 min. and the efficiencies of green rust were roughly 2 times higher than that of vivianite. The zeta potential measurement results implies that the better performance of green rust might be attributed to the favorable surface charge toward uranyl phosphate species. The removal behaviors of the minerals were well fitted by pseudo-second order kinetic model (R2 > 0.990) indicating the dominant removal process was chemical adsorption. Effects of Ca2+ and CO32- at pH 7 were examined in terms of removal kinetic and capacity. The kinetic constants of aqueous U(VI) were 8 and 13 times lower (0.492 × 10-3 g/(mg·min); 0.305 × 10-3 g/(mg·min)) compared to the value in the absence of the ions. The thermodynamic equilibrium calculation showed that the stable uranyl species (uranyl tri-carbonate) were newly formed at the condition. Surface investigation on the reacted mineral with uranyl phosphates species were carried out by XPS. Ferrous iron and U(VI) on the green rust surface were completely oxidized and reduced into Fe(III) and U(IV) after 7 d. It suggests that the ferrous minerals can retard U(VI) migration in phosphate-rich groundwater through the adsorption and subsequent reduction processes.

합성된 탄산염 및 황산염 그린 러스트의 형성 메커니즘과 이화학적 특성 규명 (Characterization of Synthesized Carbonate and Sulfate Green Rusts: Formation Mechanisms and Physicochemical Properties)

  • 이선용;최수연;장봉수;이영재
    • 광물과 암석
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    • 제35권2호
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    • pp.111-123
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    • 2022
  • 본 연구는 자연계에서 가장 흔하게 관찰되는 두 그린 러스트(green rust) 광물인 carbonate green rust (CGR)과 sulfate green rust (SGR)을 공침법(co-precipitation)을 통해 각각 합성하고, 이들의 형성 메커니즘 및 이화학적 특성들을 체계적으로 규명하였다. X-선 회절(XRD) 분석 및 리트벨트 정련 수행 결과, 본 합성 조건에서 이차광물상 없이 이중층수산화물로서 CGR과 SGR이 합성됨을 확인하였다. 또한, 각각의 구조 파라미터는 CGR의 경우 a(=b)축 = 3.17 Å, c축 = 22.52 Å이고, SGR의 경우 a(=b)축 = 5.50 Å, c축 = 10.97 Å이며, 이들의 미결정 크기는 각각 (003)면 기준 57.8 nm와 (001)면 기준 40.1 nm로 밝혀졌다. 주사전자현미경/에너지 분산형 분광분석(SEM/EDS) 결과, CGR과 SGR은 모두 육각 판상의 전형적인 이중층수산화물 결정 형상을 보이지만 탄소(C)와 황(S)의 함량은 서로 다르게 나타났다. 퓨리에 변환 적외선(FT-IR) 분광 분석결과, 탄산염(CO32-)와 황산염(SO42-) 이온들이 각각 CGR과 SGR의 층간 음이온으로 밝혀졌고, 이는 XRD를 활용한 광물상 동정 결과와 잘 일치한다. 철 용액으로의 수산화이온(OH-) 주입 시간에 따른 혼합 용액의 pH와 Eh, 그리고 잔류 철 농도의 비율(Fe(II):Fe(III)) 측정 결과, 시간에 따른 차이는 있지만 두 green rusts 모두 1단계 전구체 형성, 2단계 중간 생성물로의 상변환, 그리고 3단계 green rust로의 상변환과 에이징에 의한 결정성장으로 이어지는 결정 형성 메커니즘을 보이는 것으로 판단된다. 본 연구는 공침법을 통해 CGR과 SGR을 안정적으로 합성하고 이들의 형성 메커니즘과 이화학적 특성을 규명함으로써, green rust를 활용한 응용 연구 및 산업 활용에 원천 기초자료를 제공할 것으로 기대된다.

Sorption of I and Se onto Green Rusts with Different Interlayer Anions, GR(CO32-) AND GR(Cl-)

  • Min, J.H.;Baik, M.H.;Lee, J.K.;Jeong, J.T.
    • Journal of Nuclear Fuel Cycle and Waste Technology
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    • 제1권1호
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    • pp.57-63
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    • 2013
  • Natural green rust (GR) can retard the migration of anions through geological media because it has a Layer Double Hydroxyl (LDH) structure with a positive charge. In this study, the sorption behaviors of anions such as selenite ($Se(IV)O{_3}^{2-}$), selenate ($Se(VI)O{_4}^{2-}$), and iodide ($I^-$) onto green rusts with different structures, i.e., GR($Cl^-$) and GR($CO{_3}^{2-}$), were investigated by conducting batch sorption experiments in an anoxic condition. Experimental results showed that selenite was mostly sorbed onto GR($CO{_3}^{2-}$) and then partly reduced to metal selenium, Se(0). However, little selenate and iodide was sorbed onto GR($CO{_3}^{2-}$) while some iodide was sorbed onto GR($Cl^-$). It is presumed from the experimental results that the major sorption mechanism of $SeO{_3}^{2-}$ and $I^-$ onto green rusts is the anion exchange reaction with the anions existing in the interlayer of the rusts. Green rust, therefore, can play an important role in the retardation of anions migrating through deep geological environments owing to its LDH structure with a high anion exchange capacity.

시멘트와 Fe(II)을 이용한 환원성 탈염소화반응의 유효반응성분 규명 (Identification of Active Agents for Reductive Dechlorination in Cement/Fe(II) Systems)

  • 김홍석;이유정;김하얀;황인성
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제11권6호
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    • pp.35-42
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    • 2006
  • 본 연구는 시멘트/Fe(II) 시스템에서 TCE의 환원성 탈염소화에 관여하는 유효반응성분을 규명하기 위하여 수행되었다. 먼저 시멘트 자체에 존재하거나 혹은 그 수화물에 존재하는 성분을 다량 함유하고 있는 hematite(${\alpha}-Fe_2O_3$), lepidocrocite(${\gamma}$-FeOOH), akaganeite(${\beta}$-FeOOH), ettringite($Ca_6Al_2(SO_4)_3(OH)_{12}$)를 대상으로 TCE 분해실험을 수행하여 이러한 물질이 시멘트/Fe(II) 시스템에서 탈염소반응에 관여할 수 있는지 고찰한 결과, hematite가 잠재적 유효반응성분으로 선정되었다. 각 시스템의 반응속도상수를 비교해 본 결과 200 mM Fe(II)에 hematite와 CaO를 1 : 4(몰비)로 주입한 시스템($k\;=\;0.637\;day^{-1}$)이 기존의 cement와 Fe(II)을 이용한 경우($k\;=\;0.645\;day^{-1}$)와 가장 비슷한 동력학적 분해경향을 보인다는 것을 알 수 있었다. 처음에 pH 조절이 주목적으로 주입되었던 CaO 역시 분해반응에서 중요한 역할을 담당하는 것으로 나타났는데, CaO 첨가량이 증가할수록 hematite/CaO/Fe(II) 시스템의 분해능은 증가하다가 CaO 양이 일정 수준에 다다르면 증가세가 둔화되는 경향을 보여 주었다. SEM(Scanning Electron Microscopy) 분석을 통해서는 hematite/CaO/Fe(II) 시스템 내에서 분해능이 커질수록 육각형 판상의 결정이 새롭게 형성된다는 것을 확인 할 수 있었으며 이 결정은 portlandite, green rust($SO_4$), Friedel's salt 등일 가능성이 높은 것으로 판단되었다. 그리고 동일 시료의 XRD(X-Ray Diffraction) 분석을 통해서는 hematite, magnetite/maghemite, green rust($SO_4$)의 존재를 확인할 수 있었다. SEM 및 XRD 분석에서 공통적으로 나타나는 green rust($SO_4$)가 유효반응성분일 가능성이 높다고 판단되었다.

토양 중 mineral에 의한 염소계 유기화합물 분해 특성 연구

  • 최정윤;심상규;이우진
    • 한국지하수토양환경학회:학술대회논문집
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    • 한국지하수토양환경학회 2006년도 총회 및 춘계학술발표회
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    • pp.33-36
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    • 2006
  • The reductive dechlorination of chlorinated organic compounds by soil minerals in soil and groundwater were carried out in this study. FeS, green rust, and magnetite were chosen as the representative soil minerals which were capable of degrading chlorinated compound in soil system. FeS was the most effective reductant in degradation of carbon tetrachloride. The reductive degradation of CT and 1,1,1-TCA by FeS was much faster than that of 1,2-DCB and 2,4-DCP. The reactivity of FeS was effectively improved by the addition of trace metals. The addition of Co to FeS suspension enhanced the reaction rate of 1,2-DCB by a factor of 46 compared to that by FeS without Co.

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Insights into Tan Spot and Stem Rust Resistance and Susceptibility by Studying the Pre-Green Revolution Global Collection of Wheat

  • Abdullah, Sidrat;Sehgal, Sunish Kumar;Jin, Yue;Turnipseed, Brent;Ali, Shaukat
    • The Plant Pathology Journal
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    • 제33권2호
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    • pp.125-132
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    • 2017
  • Tan spot (TS), caused by the fungus Pyrenophora tritici-repentis (Died) Drechs, is an important foliar disease of wheat and has become a threat to world wheat production since the 1970s. In this study a globally diverse pre-1940s collection of 247 wheat genotypes was evaluated against Ptr ToxA, P. tritici-repentis race 1, and stem rust to determine if; (i) acquisition of Ptr ToxA by the P. tritici-repentis from Stagonospora nodorum led to increased pathogen virulence or (ii) incorporation of TS susceptibility during development stem rust resistant cultivars led to an increase in TS epidemics globally. Most genotypes were susceptible to stem rust; however, a range of reactions to TS and Ptr ToxA were observed. Four combinations of diseasetoxin reactions were observed among the genotypes; TS susceptible-Ptr ToxA sensitive, TS susceptible-Ptr ToxA insensitive, TS resistant-Ptr ToxA insensitive, and TS resistant-Ptr ToxA toxin sensitive. A weak correlation (r = 0.14 for bread wheat and -0.082 for durum) was observed between stem rust susceptibility and TS resistance. Even though there were no reported epidemics in the pre-1940s, TS sensitive genotypes were widely grown in that period, suggesting that Ptr ToxA may not be an important factor responsible for enhanced prevalence of TS.

산성비 및 배연탈황설비 환경에서 Ni 첨가에 따른 저합금강의 내식성 비교연구 (Comparative Study of Ni effect on the Corrosion Behavior of Low Alloy Steels in FGD and Acid Rain Environments)

  • 한준희;;장영욱;김정구
    • 대한금속재료학회지
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    • 제47권9호
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    • pp.558-566
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    • 2009
  • The alloying effect of a small amount of nickel on low alloy steel for application to flue gas desulfurization(FGD) systems was studied. The structural characteristics of the rust layer were investigated by scanning electron microscopy(SEM). The electrochemical properties were examined by means of potentiostatic polarization test, potentiodynamic polarization test, and electrochemical impedance spectroscopy(EIS) in a modified green death solution of 16.9 vol.% $H_2SO_4$+0.35 vol.% HCl at $60^{\circ}C$ and an acid rain solution of $6.25{\times}10^{-5}M\;H_2SO_4+5.5{\times}10^{-3}M\;NaCl$ at room temperature. It was found that as the amount of nickel increased, the corrosion rate increased in the modified green death solution, which seemed to result from micro-galvanic corrosion between NiS and alloy matrix. In acid rain solution, the corrosion rate decreased as the amount of nickel increased due to the repulsive force of $NiFe_2O_4$ rust against $Cl^-$ ions by electronegativity.

A New Spray Chrysanthemum, "Pure Angel" with Resistant to White Rust, Single Flower Type and Pure White Petals for Cut Flower

  • Lim, Jin-Hee;Shin, Hak-Ki;Park, Sang Kun;Cho, Hae-Ryong;Rhee, Hye-Kyung;Kim, Mi-Seon;Joung, Hyang Young
    • 한국육종학회지
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    • 제41권2호
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    • pp.173-176
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    • 2009
  • A new spray chrysanthemum cultivar 'Pure Angel' was released by National Institute of Horticultural and Herbal Science (NIHHS), Rural Development Administration (RDA), Korea in 2007. The cross was made in 2004 between 'Innocence', a breeding cultivar of NIHHS, and 'Baeksokuk', a spray cultivar with white petals. Trials were conducted from 2005 to 2007 for the evaluation and selection of this cultivar, including shade cultures in summer and retarding cultures in autumn. The natural flowering time of 'Pure Angel' is late October, but year-round flowering is possible by photo-periodic control. The cultivar has single type flowers with pure white petals and a green flower center. It shows long vase life and resistance to white rust. The diameter of flower is 52.5 mm. The numbers of flowers per stem and petals per flower are 12 and 22.5, respectively. Days to flowering under the short day treatment is about 52 days in spring seasons.

A New Spray Chrysanthemum Cultivar, "Cherry Blossom" with Resistant to White Rust, Single Flower Type and Bright Pink Petals for Cut Flower

  • Lim, Jin-Hee;Shin, Hak-Ki;Park, Sang Kun;Cho, Hae-Ryong;Rhee, Hye-Kyung;Kim, Mi-Seon;Joung, Hyang Young
    • 한국육종학회지
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    • 제40권4호
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    • pp.439-442
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    • 2008
  • A new spray chrysanthemum cultivar, 'Cherry Blossom' was released by National Horticultural Research Institute (NHRI), Rural Development Administration (RDA), Korea in 2007. A cross was made in 2002 between 'Relance', a spray cultivar with red petals and resistant to white rust and 'Yeonja', a spray cultivar with pink petals. Trials were conducted from 2005 to 2007 for the evaluation and selection of this cultivar, including shading culture in summer and retarding culture in autumn. The natural flowering time of "Cherry Blossom" is late October, but year-round flowering is possible by shading and lighting treatment. This cultivar is single type flowers with dark pink petals and green flower center and resistant to white rust. It is very stable color of petals when the variety is cultivated under high temperature conditions in summer season. The diameter of flower is 55.0 mm. The number of flowers per stem is 10.5 and the number of petals per flower is 24.0. The days to flowering under the short day treatment is about 45 in spring season.

A New Spray Chrysanthemum, "Pink Berry" with Resistance to White Rust, and Long Vase Life, Single Flower Type and Pink Petals for Cut Flower

  • Lim, Jin-Hee;Shin, Hak-Ki;Park, Sang Kun;Cho, Hae-Ryong;Rhee, Hye-Kyung;Kim, Mi-Seon;Joung, Hyang-Young
    • 한국육종학회지
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    • 제41권2호
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    • pp.141-144
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    • 2009
  • A new spray chrysanthemum 'Pink Berry' was released by National Institute of Horticultural and Herbal Science (NIHHS), Rural Development Administration (RDA), Korea in 2007. A cross was made in 2004 between 'Lineker Salmon', a spray cultivar with salmon petals, and 'Baeksokuk', a spray cultivar with white petals. Trials were conducted from 2005 to 2007 for evaluation and selection of this cultivar, including shade cultivation in summer and retarding cultivation in autumn. The natural flowering time of 'Pink Berry' is late October, but year-round flowering is possible by photo-periodic control. The cultivar has single type flowers with pink petals and a green flower center. It shows long vase life of 22 days and resistance to white rust. The diameter of flower is 52.0 mm. The numbers of flowers per stem and petals per flower are 15.5 and 29.5, respectively. Days to flowering under the short day treatment is about 56 in autumn seasons.