• 제목/요약/키워드: Mn(manganese)

검색결과 887건 처리시간 0.021초

망간코팅 여재를 이용한 수용액상의 망간 제거연구 (Removal of Manganese(II) from Aqueous Solution Using Manganese Coated Media)

  • 김석준;김원기;이승목;양재규
    • 한국물환경학회지
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    • 제26권3호
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    • pp.454-459
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    • 2010
  • This study investigated the applicability of manganese coated media such as manganese coated sand (MCS), manganese coated sericite (MCSe) and manganese coated starfish material calcined at $550^{\circ}C$ (MCSf) to remove Mn(II) in synthetic wastewater. Manganese coated media prepared at different pH was applied in the treatment of soluble Mn(II) in batch and column experiments at various Mn(II) concentrations. The amount of Mn coated on three different media was approximately 800~1100 mg/kg. From the stability test, negligible dissolution of Mn was observed above pH 3.0. In batch test, more than 40% of Mn(II) was removed by all sand media at various manganese concentrations. In order to see the effect of additional oxidant for the removal of Mn(II), 4 mg/L of hypochlorite was added in Mn(II) solution during column experiment. Breakthrough of Mn(II) was greatly retarded in the presence of hypochlorite in all column reactors packed with different media. Among the manganese coated media, MCSf prepared at pH 4 indicated the highest removal capacity. The removal efficiency of Mn(II) was also increased in the multi-layer system (0.5 g of MCS, MCSe, and MCSf each).

Manganese and Iron Interaction: a Mechanism of Manganese-Induced Parkinsonism

  • Zheng, Wei
    • 한국환경성돌연변이발암원학회:학술대회논문집
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    • 한국환경성돌연변이발암원학회 2003년도 추계학술대회
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    • pp.34-63
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    • 2003
  • Occupational and environmental exposure to manganese continue to represent a realistic public health problem in both developed and developing countries. Increased utility of MMT as a replacement for lead in gasoline creates a new source of environmental exposure to manganese. It is, therefore, imperative that further attention be directed at molecular neurotoxicology of manganese. A Need for a more complete understanding of manganese functions both in health and disease, and for a better defined role of manganese in iron metabolism is well substantiated. The in-depth studies in this area should provide novel information on the potential public health risk associated with manganese exposure. It will also explore novel mechanism(s) of manganese-induced neurotoxicity from the angle of Mn-Fe interaction at both systemic and cellular levels. More importantly, the result of these studies will offer clues to the etiology of IPD and its associated abnormal iron and energy metabolism. To achieve these goals, however, a number of outstanding questions remain to be resolved. First, one must understand what species of manganese in the biological matrices plays critical role in the induction of neurotoxicity, Mn(II) or Mn(III)? In our own studies with aconitase, Cpx-I, and Cpx-II, manganese was added to the buffers as the divalent salt, i.e., $MnCl_2$. While it is quite reasonable to suggest that the effect on aconitase and/or Cpx-I activites was associated with the divalent species of manganese, the experimental design does not preclude the possibility that a manganese species of higher oxidation state, such as Mn(III), is required for the induction of these effects. The ionic radius of Mn(III) is 65 ppm, which is similar to the ionic size to Fe(III) (65 ppm at the high spin state) in aconitase (Nieboer and Fletcher, 1996; Sneed et al., 1953). Thus it is plausible that the higher oxidation state of manganese optimally fits into the geometric space of aconitase, serving as the active species in this enzymatic reaction. In the current literature, most of the studies on manganese toxicity have used Mn(II) as $MnCl_2$ rather than Mn(III). The obvious advantage of Mn(II) is its good water solubility, which allows effortless preparation in either in vivo or in vitro investigation, whereas almost all of the Mn(III) salt products on the comparison between two valent manganese species nearly infeasible. Thus a more intimate collaboration with physiochemists to develop a better way to study Mn(III) species in biological matrices is pressingly needed. Second, In spite of the special affinity of manganese for mitochondria and its similar chemical properties to iron, there is a sound reason to postulate that manganese may act as an iron surrogate in certain iron-requiring enzymes. It is, therefore, imperative to design the physiochemical studies to determine whether manganese can indeed exchange with iron in proteins, and to understand how manganese interacts with tertiary structure of proteins. The studies on binding properties (such as affinity constant, dissociation parameter, etc.) of manganese and iron to key enzymes associated with iron and energy regulation would add additional information to our knowledge of Mn-Fe neurotoxicity. Third, manganese exposure, either in vivo or in vitro, promotes cellular overload of iron. It is still unclear, however, how exactly manganese interacts with cellular iron regulatory processes and what is the mechanism underlying this cellular iron overload. As discussed above, the binding of IRP-I to TfR mRNA leads to the expression of TfR, thereby increasing cellular iron uptake. The sequence encoding TfR mRNA, in particular IRE fragments, has been well-documented in literature. It is therefore possible to use molecular technique to elaborate whether manganese cytotoxicity influences the mRNA expression of iron regulatory proteins and how manganese exposure alters the binding activity of IPRs to TfR mRNA. Finally, the current manganese investigation has largely focused on the issues ranging from disposition/toxicity study to the characterization of clinical symptoms. Much less has been done regarding the risk assessment of environmenta/occupational exposure. One of the unsolved, pressing puzzles is the lack of reliable biomarker(s) for manganese-induced neurologic lesions in long-term, low-level exposure situation. Lack of such a diagnostic means renders it impossible to assess the human health risk and long-term social impact associated with potentially elevated manganese in environment. The biochemical interaction between manganese and iron, particularly the ensuing subtle changes of certain relevant proteins, provides the opportunity to identify and develop such a specific biomarker for manganese-induced neuronal damage. By learning the molecular mechanism of cytotoxicity, one will be able to find a better way for prediction and treatment of manganese-initiated neurodegenerative diseases.

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Synthesis and Crystal Structure of Manganese(II) Complexes with 2-Acetylpyridine Methyldithiocarbazate

  • 모성종;임우택;구본권
    • Bulletin of the Korean Chemical Society
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    • 제19권11호
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    • pp.1175-1179
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    • 1998
  • The aerobic reaction of 2-(acetylpyridine)-S-methyldithiocarbazate (acpy-mdtcH) and 2-(acetylpyridine)-N-phenylthiosemicarbazate(acpy-phTscH) with manganese(Ⅱ) acetate affords Mn(acpy-mdtc)2 and Mn(acpyphTsc)2, respectively. The spectroscopic data and X-ray structure of Mn(acpy-mdtc)2 are reported. Crystal data for Mn(acpy-mdtc)2; C18H20N6S4Mn, mol wt 503.58, monoclinic crystal system(P21/c) a=12.240(5) Å, b= 10.918(l) Å, c=17.651(3) Å, β=105.93(2), and V=2268(l) Å3, Z=4, 5071 data collected with 0°< 2θ < 52.64°, 2995 data with I > 3σ(I), R= 0.046, Rw= 0.065. The ligands act as tridentate NNS donors. The two Mn-S distances are not equal, and respectively 2.512(2) Å and 2.541(2) Å. The average Mn-N (azomethine) length, 2.242(5) Å, is slightly shorter than the average Mn-N (pyridyl) length, 2.262(5) Å. The coordination environment about MN(Ⅱ) center deviates considerably from octahedral geometry. The manganese(Ⅱ)-manganese(Ⅰ) and manganese(Ⅰ)-manganese(0) reduction potentials of Mn(acpy-mdtc)2 are ∼-l.71 and ∼-l.98 V while those of Mn(acpy-phTsc)2 are ∼-l.87 and ∼-2.11 V vs. Ag/Ag+ in dimethyl sulfoxide, respectively.

Electron Spin Resonance Study of Manganese Ion Species Incorporated into Novel Aluminosilicate Nanospheres with Solid Core/Mesoporous Shell Structure

  • Back, Gern-Ho;Kim, Ki-Yub;Kim, Yun-Kyung;Yu, Jong-Sung
    • 한국자기공명학회논문지
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    • 제14권2호
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    • pp.55-75
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    • 2010
  • An ion-exchanged reaction of $MnCl_2$ with Al-incorporated solid core/mesoporous shell silica (AlSCMS) followed by calcinations generated manganese species, where average oxidation state of manganese ion is 3+, in the mesoporous materials. Dehydration results in the formation of $Mn^{2+}$ ion species, which can be characterized by electron spin resonance (ESR). The chemical environments of the manganese centers in Mn-AlSCMS were investigated by diffuse reflectance, UV-VIS and ESR spectroscopic methods. Upon drying at 323 K, part of manganese is oxidized to higher oxidation state ($Mn^{3+}$ and $Mn^{4+}$) and further increase in (average) oxidation state takes place upon calcinations at 823 K. It was found that the manganese species on the wall of the Mn-AlSCMS were transformed to tetrahedral $Mn^{3+}$ or $Mn^{4+}$ and further changed to square pyramid by additional coordination to water molecules upon hydration. The oxidized $Mn^{3+}$ or $Mn^{4+}$ species on the surfaces were reversibly reduced to $Mn^{2+}$ or $Mn^{3+}$ species or lower valances by thermal process. Mn(II) species I with a well resolved sextet was observed in calcined, hydrated Mn-AlSCMS, while Mn (II) species II with g = 5.1 and 3.2 observed in dehydrated Mn-AlSCMS. Both species I and II are considered to be non-framework Mn(II).

Mn/$CeO_2$와 Mn/$ZrO_2$ 촉매 상에서 $NH_3$를 사용한 NO의 선택적 촉매 산화 반응 (Low Temperature Selective Catalytic Reduction of NO with $NH_3$ over Mn/$CeO_2$ and Mn/$ZrO_2$)

  • 고정휘;박성훈;전종기;손정민;이시훈;박영권
    • 공업화학
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    • 제23권1호
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    • pp.105-111
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    • 2012
  • 본 연구에서는 저온에서 질소산화물 저감효율이 뛰어난 것으로 알려진 망간전구체의 종류에 따른 영향을 고찰하기 위해 초임계수열법으로 합성한 세리아($CeO_2$)와 지르코니아($ZrO_2$)를 담체로 하여 저온 SCR 공정에서의 온도에 따른 활성변화를 비교 분석하였다. Manganese acetate (MA)와 Manganese nitrate (MN), 두 종류 망간전구체의 농도를 영향인자로 고려하여 촉매의 활성변화를 고찰하였다. 활성화된 시료의 특성은 $N_2$ adsorption-desorption, TGA, XRD, XPS를 통해 분석하였고 질소산화물 저감효율을 측정하기 위해 NOx 분석기를 이용하여 De-NOx 실험을 수행하였다. 제조방법에 따라 합성한 촉매의 질소산화물 저감 효율을 분석한 결과 Manganese acetate (MA)를 활성물질로 사용한 촉매가 Manganese nitrate (MN)을 사용한 촉매에 비해 전체적인 온도 영역에서 우수한 질소산화물 저감효율을 보였다. 이는 특성분석 결과를 통해 알 수 있듯이 Manganese acetate (MA)의 주성분인 $Mn_2O_3$가 Manganese nitrate (MN)의 주성분인 $MnO_2$에 비해 높은 산소 이동도를 갖고 담체와의 강한 상호작용을 형성하는 것에 기인한 것으로 보인다.

Modelling FCW 용착금속의 기계적 성질에 미치는 Si, Mn의 영향 (The effect of silicon and manganese on)

  • 양철웅;강춘식;김경중
    • Journal of Welding and Joining
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    • 제8권2호
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    • pp.27-39
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    • 1990
  • The effect of silicon and manganese, in the ranges of 0.3% to 1.0wt% Si and 0.7 to 2.6wt%Mn, on the microstructure and mechanical properties of flux cored arc welded deposits have been investigated for the purpose of improving mechanical properties. Microstructure of weld metals was mainly influenced by manganese content, and manganese increased the volum fraction of acicular ferrite and refined the microstructure. Also, tensile properties were governed by manganese content, ultimate tensile strength and yield strength were increased by approximately 82MPa and 58MPa per 1% Mn addition to the deposit. Toughness was improved by increasing Mn content and lowering Si content. Optimal impact properties were obtained at above 1.8wt% Mn and below 0.5wt% Si. Acicular ferrite was predominant factor in improving mechanical properties. Formation of acicular ferrite was promoted by manganese and no direct relationship between AF(acicular ferrite) proportion and oxygen in weld metal was found.

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廢 망간電池로부터 黃酸 암모늄에 의한 Mn 성분의 분리 회수에 관한 연구 (A Study on the Recovery of Mn Component from the Spent Manganese Batteries with Ammonium Sulfate)

  • 박용성;우제원;황영애
    • 자원리싸이클링
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    • 제9권6호
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    • pp.3-8
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    • 2000
  • 본 연구는 폐 망간전지의 음극합체로부터 Mn성분을 분리 회수할 수 있는 새로운 공정개발을 위하여 폐 망간전지의 음극합체와 황산암모늄과의 분해반응을 조사하였다 최적 분해반응 조건은 반응온도 $425^{\circ}C$, 폐 망간전지의 음극합체에 대한 황산암모늄의 무게비 12.0, 반응시간 60분이었고, 이 조건에서 얻어진 Mn의 최고 회수율은 93.5%였다.

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Aeromonas sp. MN44의 특성과 망간 산화에 관한 연구 (A Study on the Manganese Oxidation and Characteristics of Aeromonas sp)

  • 구종서;박경량
    • 생명과학회지
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    • 제15권1호
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    • pp.94-99
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    • 2005
  • 충청남도 목천과 충청북도 오창 근교의 토양으로부터 망간을 산화하는 64 집락을 분리하고 이 중 망간 산화능이 가장 우수한 한 균주를 최종 선별하여 생리, 생화학적 특성을 조사하고, 16S rRNA 염기 서열분석 등을 통하여 동정한 결과 최종 선별된 균주는 Aeromonas sp. MN44로 확인되었다. 최종 선별된 Aeromenas sp. MN44는 lactose를 제외한 여러 당들은 이용하지 못하였으며, 중금속내성은 lithium과 manganese에 대해서는 mg/ml 단위의 높은 농도까지 중금속 내성을 가지고 있었지만 cadmium에는 전혀 내성을 나타내지 않았다. 또 kanamycin, chloramphenicol, ampicillin, tetracycline, spectinomycin등 조사한 모든 항생제에 대해 전혀 내성을 갖지 않았다. Aeromonas sp. MN44가 생성하는 망간산화물질의 최적 pH는 pH 7.4로 확인되었으며, 이 균이 생성하는 망간 산화 factor는 proteinase K와 가열처리에 의해 저해되는 단백질이고, ammonium sulfate 침전과 ion exchange chromatography 그리고 gel filtration의 단계를 통해 부분 정제한 망간 산화 factor의 분자량은 약 113 kDa로 확인되었다.

Pseudomonas sp. MN5의 특성과 망간산화단백질 정제 (Characterization of Pseudomonas sp. MN5 and Purification of Manganese Oxidizing Protein)

  • 이승희;박경량
    • 생명과학회지
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    • 제18권1호
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    • pp.84-90
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    • 2008
  • 충청남도 병천면 일대의 6곳의 토양시료를 채취하여 망간을 산화하는 균주들을 순수분리 하고, 이 중 망간 산화능이 가장 우수한 한 균주를 최종 선별하여 본 실험에 사용하였다. 최종 선별된 균주의 생리, 생화학적 특성을 조사하고, 16S rRNA 염기 서열분석 등을 통하여 동정한 결과 최종 선별된 균주는 Pseudomonas sp. MN5로 확인되었다. Pseudomonas sp. MN5은 fructose와 maltose를 제외한 다양한 당을 이용하지 못하였으며, 항생제인 kanamycin, chloramphenicol, streptomycin 그리고 tetracycline에는 높은 감수성을 보이고, 리튬, 망간, 바륨과 같은 중금속에 대해서는 mg/ml 단위의 높은 내성을 나타냈다. 그리고 Pseudomonas sp. MN5의 망간산화 최적 pH는 7.5이고, 망간산화 활성이 proteinase K와 가열처리를 한 시료에서 저해되었다. Pseudomonas sp. MN5가 생성하는 망간산화 단백질을 ammonium sulfate precipitation, HiTrap Q FF ion exchange chromatography 그리고 G3000sw $_{XL}$ gel filtration chromatography를 통해서 정제한 결과, 15 kDa, 46.7 kDa 그리고 63.5 kDa의 세종류의 manganese oxidizing protein가 확인되었고, 내부서 열과 N-말단 서열 분석 결과 Pseudomonas sp. MN5가 생성하는 망간산화 단백질은 외막의 porin 단백질인 것으로 추정되었다.

2차원 Manganese-Imidazoledicarboxylate 배위 고분자:aqua(imidazole-4,5-dicarboxylateo)manganese(II), [Mn(IDC)($H_2O$)]의 합성 및 구조 (2-Dimensional Manganese-Imidazoledicarboxylate Coordination Polymer:Preparation and Structure of aqua(imidazole-4,5-dicarboxylateo)manganese(II), [Mn(IDC)($H_2O$)])

  • 민동원;이순원
    • 한국결정학회지
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    • 제12권4호
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    • pp.212-215
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    • 2001
  • NaOAC·3H₂O 존재 하에서, manganese nitrate(Mn(NO₃)₂·H₂O )와 imidzole-4,5-dicarboxylic acid(IDCH₂)가 수열반응하여, 실험식 [Mn(IDC)(H₂O)]을 가지는 2차원 배위고분자 합성되었다. 화합물 1의 구조가 분광학적 방법(IR) 및 X-ray 회절법으로 규명되었다. 화합물의 1의 결정학적 자료: 사방정계 공간군 Pbca, a=7.257(5) Å b=13.687(5)Å, c=14.332(6)Å Z=8, R(wR₂)=0.0498(0.0999).

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