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A Facile Synthesis of Octahedral Layered Birnessite-Type Manganese Oxide (OL-1) Nanostructures with Tremendous Catalytic Activity for Methylene Blue Degradation

机译:八面体层状体育型锰氧化物(OL-1)纳米结构的容易合成,具有巨大催化活性的亚甲基蓝色降解

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Birnesitte-type octahedral layer manganese oxides were successfully synthesized via precipitation method with the different mole ratios of potassium permanganate and oxalic acid (KMnO_4/H_2C_2O_4). The precipitation reaction occurs only at certain mole ratios (i.e. 3:5 and 2:3) of KMnO_4/H_2C_2O_4 were applied. However, at lower mole ratio of KMnO_4/H_2C_2O_4 (1:4) or higher mole ratio KMnO_4/H_2C_2O_4 (3:1) the reactants remain solution even at longer the reaction times. The precipitated solid product was calcined up to 600 °C and referred to as the CC catalysts, whereas the products without calcination were denoted to as the CNC catalysts. The solid CC and CNC catalysts were then characterized by X-ray Diffraction (XRD), Scanning Electron Microscopy (SEM), Atomic Absorption Spectroscopy (AAS) and the oxidation states of manganese in the manganese oxide catalysts were determined together with the zero point charge (pH_(zpc)) as well as particle sizes. The data from XRD indicated the CNC catalysts showed wide peaks with low intensities, indicating poor crystallinity of bimessite whereas the CC catalysts generated much higher crystalline birnessite. The morphology of the CC and CNC catalysts displayed similar aggregates of particles with irregular shapes and sizes but CNC catalyst exhibit smaller particle size. Data from AOS of manganese indicated that CNC catalyst (3.12) have lower values than that of CC (4.00), indicating the presence of more defects which was consistent with XRD result, low values pH_(zpc) (3.17-3.92) and K/Mn (0.44-0.50). The catalytic activities of birnessite catalysts were tested for the degradation of methylene blue (MB) dye with H_2O_2 as an oxidant. The CNC catalysts showed substantially higher catalytic activities for MB degradation compared to the CC catalysts. The maximum degradation of methylene blue was 97.73% for the CNC catalyst using mole ratio (KMnO_4/H_2C_2O_4) of 2:3, whereas the CC catalysts can degrade only 83.27% of MB using m
机译:BIRNESTE型八面体层锰氧化物通过沉淀法通过沉淀法成功地合成了不同摩尔酸钾和草酸(KMNO_4 / H_2C_2O_4)的摩尔比。沉淀反应仅在施加KMnO_4 / H_2C_2O_4的某些摩尔比(即3:5和2:3)处发生。然而,在较低的摩尔比的KMnO_4 / h_2C_2O_4(1:4)或更高的摩尔比例KMnO_4 / H_2C_2O_4(3:1)即使在反应时间较长时也保持溶液。将沉淀的固体产物煅烧高达600℃并称为CC催化剂,而没有煅烧的产物表示为CNC催化剂。然后通过X射线衍射(XRD),扫描电子显微镜(SEM),原子吸收光谱(AAS)和锰氧化物催化剂中锰的氧化态的特征在一起,与零点电荷一起测定固体CC和CNC催化剂。 (PH_(ZPC))以及粒度。来自XRD的数据表明,CNC催化剂显示出低强度的宽峰,表明Bimessite的差的结晶度,而CC催化剂产生了更高的结晶Birniedite。 CC和CNC催化剂的形态显示出与不规则形状和尺寸的颗粒的相似聚集体,但CNC催化剂表现出较小的粒径。来自锰的AOS的数据表明,CNC催化剂(3.12)的值低于CC(4.00)的值,表明存在与XRD结果一致的缺陷,低值pH_(ZPC)(3.17-3.92)和k / Mn(0.44-0.50)。测试Birneryite催化剂的催化活性,用于用H_2O_2作为氧化剂的亚甲基蓝(MB)染料的降解。与CC催化剂相比,CNC催化剂显示出MB降解的基本上更高的催化活性。使用摩尔比(KMnO_4 / H_2C_2O_4)为2:3的CNC催化剂的最大降解为97.73%,而CC催化剂可以使用m仅降解83.27%的MB

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