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1.
Hydrated α-Fe2O3 nanoparticles were prepared inside resin pores byin situ forced hydrolysis of Fe3+ ions chemisorbed at the pore walls. They range from 20 to 50 ? in size and are spherical in shape. They were used in catalysis for hydroxylation of phenol with H2O2 and possessed very high hydroxylation activity.  相似文献   

2.
57Fe Mössbauer effect spectra have been obtained as a function of temperature for a series of Fe2O3Cr2O3 compositions in the range 0.2–75% Fe2O3. From 30% of Fe2O3 upwards, the dependence of the reduced internal magnetic field Heff(T)Heff (T = 0) on reduced temperature, TTN, was found to be identical with that for α-Fe2O3, indicating the persistence of Fe2O3-type ordering over this composition range. For 0.2% of 57Fe2O3 in Cr2O3, the reduced field values fall far below those for α-Fe2O3 or Cr2O3, and weak coupling of Fe3+ with Cr3+ has been inferred.A Morin transition similar to that for α-Fe2O3 was not present for samples containing 75% of Fe2O3. Quadrupole shifts ? were found to be negative and diminishing between 75 and 30% Fe2O3, and positive between 20 and 0.2%. The limiting value at lowest dilution of 0.113 ± 0.010 mm/sec corresponds to a nuclear quadrupole coupling constant e2qQ of 0.45 ± 0.04, approximately half that for α-Fe2O3. Cone angles for Fe3+ spin vectors in the spin-spiral arrangements for intermediate compositions have been derived, and are similar to, but less extreme than those deduced from neutron diffraction data.  相似文献   

3.
Low-temperature nitridation has been reported to produce ferromagnetic α″-Fe16N2 by ammonia nitridation of α-Fe fine powder, which was obtained from the reduction of vapor-grown γ-Fe2O3. The effects of humidity during this preparation were investigated in the present study. α″-Fe16N2 was inconsistently obtained, and at low yield, from Fe3O4 fine powder (MT-40) prepared from aqueous solution. Reducing the adsorbed water content in the iron oxide starting powder resulted in improved reproducibility of the α″-Fe16N2 yield of the nitridation. The use of a smaller-diameter reaction tube, less than 25 mm in diameter, enabled more reproducible preparation from vapor-grown γ-Fe2O3 powder (CI-30). The reaction yield was further improved by using high-quality ammonia with a water content of ≤0.05 ppm. Minimizing the humidity made it possible to obtain a fine powder with a high α″-Fe16N2 content. Enhancement of the magnetization to 210 emu g−1 at room temperature was observed from a nitrided mixture of α″-Fe16N2 with residual α-Fe, compared to 199 emu g−1 for an α-Fe fine powder reduced from γ-Fe2O3. However, excess nitrogen and residual oxygen in the nitrided products reduced the magnetization below the value of α-Fe powder after nitridation. The magnetization was enhanced in nitrided products with a nitrogen content slightly below the stoichiometric amount for α″-Fe16N2.  相似文献   

4.
The sol-gel combustion synthesis (SGCS) for oxygen carrier (OC) to be used in chemical looping combustion (CLC) was first designed and experimented in this work, which is a new method of OC synthesis by combining sol-gel technique and solution combustion synthesis. Cheap hydrated metal nitrates and urea were adopted as precursors to prepare Fe2O3/Al2O3 OC at the molar ratio to unity (Fe1Al1), which was characterized through various means, including Fourier transforms infrared (FTIR) spectroscopy, thermogravimetric analysis (TGA), differential thermal analysis (DTA), X-ray diffractor (XRD), and N2 isothermal adsorption/desorption method. FTIR analysis on the chemical structure of the dried gel of Fe1Al1 indicated that urea was partly hydrolyzed and the hydrated basic carbonate was formed by the combination of groups such as (Fe(1−yAly)1−xO1−3x, CO32− and -OH-. By analyzing the staged products during SGCS, calcination was found as a necessary step to produce Fe2O3/Al2O3 OC with separate phases of α-Fe2O3 and α-Al2O3. Through TGA-DTA, the decomposition of the dried gel was found to undergo five stages. The analysis of the evolved gases from the gel decomposition using FTIR partially confirmed the staged decomposition and assisted a better understanding of the mechanism of SGCS. XRD identification further substantiated the necessity of calcination to synthesize Fe2O3/Al2O3 OC with separate phases of α-Fe2O3 and α-Al2O3, though it was not necessary for the synthesis of single phase α-Fe2O3 and α-Al2O3. Structural characterization performed on N2 adsorption analyzer displayed that the pore shape of Fe1Al1 particles was heterogeneous. Finally, H2 temperature-programmed reduction (TPR) of Fe1Al1 products in TGA indicated that the reduction reaction of Fe1Al1 OC after calcination was a single step reaction from α-Fe2O3 to Fe, and calcination benefited to improve the transfer rate of the lattice oxygen from the OC to fuel H2. Furthermore, four times of reduction and oxidization (redox) reaction by alternating with H2 and air demonstrated the synthesized OC had good reactivity and sintering-resistance, much suitable to be used in the realistic CLC. Overall, the SGCS method was found superior to other existent methods to prepare Fe2O3/Al2O3 OC for CLC application.  相似文献   

5.
In order to elucidate the influence of preparative history of α-Fe2O3 on its reactivity, the catalytic thermal decomposition of KClO4 by α-Fe2O3 was studied by means of DTA and X-ray techniques. The catalysts were prepared by the calcination of three iron salts, Fe(OH)(CH3COO)2, FeSO4 ? 7H2O and Fe2(SO4)3 ? αH2O, at temperatures of 500–1200°C in air. The lower the preparation temperature of αFe2O3, the larger the specific surface area and reversely the smaller the crystalline size. KClO4 without α-Fe2O3 was found to begin fusion and decomposition simultaneously at about 530°C. The addition of αFe2O3 resulted in promotion of the decomposition reaction of KClO4; a lowering of 30–110°C in the initial decomposition temperature and a solid-phase decomposition before fusion of KClO4. The influence of preparative history of α-Fe2O3 on the decomposition mainly depended on the preparation temperature rather than the starting material. The initial decomposition temperature of KClO4 increased with an increase of the preparation temperature of α-Fe2O3. The effect of α-Fe2O3 was discussed on the basis of the charge transfer and the oxygen abstraction models.  相似文献   

6.
TG experiments on the hydrogen reduction of α-Fe2O3 were carried out to elucidate the influence of the preparation history of the oxide on its reactivity. α-Fe2O3 samples were prepared by the thermal decomposition of seven iron salts in a stream of oxygen, air or nitrogen at temperatures of 500–1200°C for 1 h. Thirteen metal ions such as Cu2+, Ni2+, etc. were used as doping agents. The reactivity of the oxide was indicated by the initial reduction temperature (Ti. α-Fe2O3 prepared at lower temperatures showed lower Ti values and the reduction proceeded stepwise (Fe2O3 → Fe3O4 → Fe). Ti values increased with the rise in the preparation temperature of the oxide. The oxides prepared at higher temperatures showed that two reduction steps (Fe2O3 → Fe3O4 → Fe) proceed simultaneously. the preparation in oxygen gave higher Ti than that in air or nitrogen. The doping by metal ions, except Ti4+, lowered the Ti of α-Fe2O3. The Cu2+ ion showed the lowest Ti, while Ti4+ showed the highest Ti and the inhibition effect.The reduction process was expressed by two equations; Avrami—Erofeev's equation for α-Fe2O3 → Fe3O4 and Mampel's equation for Fe3O4 → Fe.  相似文献   

7.
An experimental study on the conversion of NO in the NO/N2, NO/O2/N2, NO/C2H4/N2 and NO/C2H4/O2/N2 systems has been carried out using dielectric barrier discharge (DBD) plasmas at atmospheric pressure. In the NO/N2 system, NO decomposition to N2 and O2 is the dominating reaction; NO conversion to NO2 is less significant. O2 produced from NO decomposition was detected by an on-line mass spectrometer. With the increase of NO initial concentration, the concentration of O2 produced decreases at 298 K, but slightly increases at 523 K. In the NO/O2/N2 system, NO is mainly oxidized to NO2, but NO conversion becomes very low at 523 K and over 1.6% of O2. In the NO/C2H4/N2 system, NO is reduced to N2 with about the same NO conversion as that in the NO/N2 system but without NO2 formation. In the NO/C2H4/O2/N2 system, the oxidation of NO to NO2 is dramatically promoted. At 523 K, with the increase of the energy density, NO conversion increases rapidly first, and then almost stabilizes at 93–91% of NO conversion with 61–55% of NO2 selectivity in the energy density range of 317–550 J L−1. It finally decreases gradually at high energy density. A negligible amount of N2O is formed in the above four systems. Of the four systems studied, NO conversion and NO2 selectivity of the NO/C2H4/O2/N2 system are the highest, and NO/O2/C2H4/N2 system has the lowest electrical energy consumption per NO molecule converted.  相似文献   

8.
An improved theory of electron transfer absorption is proposed. The possibility of such absorption during the collision of ion-molecule pairs is discussed and frequencies for the O2O2+, O2O2?, NONO?, COCO+ and N2N2+ pairs are estimated. Oscillator strengths are also estimated for the O2O2+ pair.  相似文献   

9.
采用十二胺为模板剂、氨水做沉淀剂成功制备了介孔α-Fe2O3, 通过粉末X射线衍射(XRD)、透射电镜(TEM)、N2吸附/脱附技术对样品晶相、形貌和比表面积进行了表征. 根据介孔α-Fe2O3悬浮液的酸碱滴定数据, 使用FITEQL软件, 采用双电层恒电容模型计算得出了介孔α-Fe2O3的表面酸碱反应平衡常数. 在此基础上研究了Cu2+, Pb2+, Zn2+在介孔氧化铁表面的吸附行为, 使用WinSGW软件模拟得出了相应的表面配合反应平衡常数并讨论了其吸附机理.  相似文献   

10.
以Fe(NO3)3·9H2O和正硅酸乙酯(TEOS)为原料, 通过溶胶-凝胶法和辅助模板法分别制备了纳米α-Fe2O3和SiO2, 并对所合成样品进行了粉末X射线衍射(XRD)和BET表征. 使用自动电位滴定仪测定了α-Fe2O3/SiO2纳米颗粒混合体系的表面酸碱性质. 研究了在不同pH下α-Fe2O3/SiO2混合体系对Cu2+、Pb2+、Zn2+离子的吸附行为. 基于上述实验数据, 用WinSGW软件计算了α-Fe2O3/SiO2混合体系表面酸碱配位常数, 并得出结论: α-Fe2O3/SiO2混合体系表面反应为单一脱质子反应≡XOH ⇔ ≡XO-+ H+(lg K = -8.19±0.15), 明显区别于同时具有加质子和脱质子反应的α-Fe2O3/SiO2/γ-Al2O3, α-Fe2O3/γ-Al2O3和SiO2/γ-Al2O3等纳米颗粒混合体系. 在此基础上拟合得到α-Fe2O3/SiO2混合体系吸附重金属离子Cu2+、Pb2+、Zn2+的表面络合反应平衡常数分别为:
≡XOH + M2+ ⇔ ≡XOM++ H+ [lg K = -3.1, -3.6, -3.8 (M = Cu, Pb, Zn)].
≡XOH+M2++H2O ⇔≡XOMOH+2H+[lg K = -8.8, -8.0, -10.5 (M = Cu, Pb, Zn)]  相似文献   

11.
The role of Fe3+ ions in the transformations from boehmites and pseudoboehmite xerogels via transition aluminas to corundum was studied here. Especially, the active iron species responsible for the decrease of the temperature of transformation to corundum were looked for. To enable the formation of various Fe3+ and Fe2+ species, samples were subjected to thermal treatments in different atmospheres as well as mechanically activated. Thermal analysis and ESR spectroscopy served to follow the processes and to characterise the resulting products. It was found that (i) isolated Fe3+ ions can indicate local structural changes but have (almost) no influence on the temperature of corundum formation, (ii) the temperature of corundum formation decreases in the result of action of small α-Fe2O3 particles and (iii) during thermal treatments Fe3+ ions are distributed between different phases or precursors thereof: transition aluminas, corundum, Fe2O3, and a Fe3+ pool.  相似文献   

12.
通过焙烧-超声混合法成功地制备了BiOBr/g-C3N4 S型异质结复合光催化剂。采用多种表征手段对样品物理属性进行了表征,包括X射线多晶粉末衍射仪(XRD)、扫描电子显微镜(SEM)、X射线光电子能谱(XPS)、紫外可见漫反射光谱(UV-VisDRS)。研究了所制备样品有/无Fe3+的光-自芬顿催化/光催化降解罗丹明B (RhB)性能。通过捕获实验确定了光催化反应中的主要活性物种,提出了光-自芬顿反应的降解机理。研究结果表明,BiOBr/g-C3N4 S型异质结能原位生成H2O2,添加Fe3+后,H2O2被原位活化成活性物种且光生电流和载流子分离效率获得显著提高。该光-自芬顿过程能高效降解RhB,其反应速率常数为0.208 min-1,约为无Fe3+光催化反应速率常数的5.3倍,在光-自芬顿循环使用过程中表现出良好的稳定性。Fe3+的加入促进了光生电荷的分离和H2O2的活化,超氧阴离子自由基(·O2-)、空穴和羟基是光-自芬顿催化过程中的主要活性物种,且·O2-作用更大。  相似文献   

13.
通过焙烧-超声混合法成功地制备了BiOBr/g-C3N4S型异质结复合光催化剂。采用多种表征手段对样品物理属性进行了表征,包括X射线多晶粉末衍射仪(XRD)、扫描电子显微镜(SEM)、X射线光电子能谱(XPS)、紫外可见漫反射光谱(UV-Vis DRS)。研究了所制备样品有/无Fe3+的光-自芬顿催化/光催化降解罗丹明B(RhB)性能。通过捕获实验确定了光催化反应中的主要活性物种,提出了光-自芬顿反应的降解机理。研究结果表明,BiOBr/g-C3N4S型异质结能原位生成H2O2,添加Fe3+后,H2O2被原位活化成活性物种且光生电流和载流子分离效率获得显著提高。该光-自芬顿过程能高效降解RhB,其反应速率常数为0.208 min-1,约为无Fe3+光催化反应速率常数的5.3倍,在光-自芬顿循环使用过程中表现出良好的稳定性。Fe...  相似文献   

14.
Rate coefficients for collisional removal of O(1D) by six atmospheric gases have been measured by monitoring the appearance of O(3P) following photolytic production of O(1D). The measured values, kM±2σ, in units of 10?11 cm?3 molecule ?1 s?1 are kO3 = 22.8±2.3, kN2 = 2.52 ± 0.25, kCO2 = 10.4 ± 1.0,kH2O 195± 2.0, kN2O = 11.7 ± 1.2, and kH2, = 11.8±1.2.  相似文献   

15.
Nanosized Fe2O3 clusters are pillared in the interlayer spaces of layered perovskites, H1−xLaxCa2−xNb3O10 (0≤x≤0.75) by a guest-exchange reaction using the trinuclear acetato-hydroxo iron cation, [Fe3(OCOCH3)7 OH·2H2O]+. The interlayer spaces of niobate layers are pre-expanded with n-butylammonium cations (n-C4H9NH+3), which are subsequently replaced by bulky iron pillaring species to form Fe(III) complex intercalated layer niobates. Upon heating at 380°C, the interlayered acetato-hydroxo iron complexes are converted into Fe2O3 nanoclusters with a thickness of ca. 3.5 Å irrespective of the interlayer charge density (x). The band-gap energy of the Fe2O3 pillars (Eg2.25 eV) is slightly larger than that of bulk Fe2O3 (Eg2.20 eV) but is smaller than that expected for such a small-sized semiconductor, which can be assigned to the pancake-shaped Fe2O3 pillars of 3.5 Å in height with comparatively large lateral dimension. X-ray absorption spectroscopic measurements at the Fe K-edge are carried out in order to obtain structural information on the Fe2O3 pillars stabilized between the niobate layers. XANES analysis reveals that the interlayer FeO6 octahedra have coordination environments similar to that of bulk α-Fe2O3, but noncentrosymmetric distortion of interlayered FeO6 is enhanced due to the asymmetric electric potential exerted by the negatively charged niobate layers. Scanning electron microscopic observation and nitrogen adsorption–desorption isotherm measurement suggest that the pillared derivatives are nanoporous materials with the highest BET specific surface area of ca. 116 m2/g.  相似文献   

16.
A study has been made of the electrical, optical and photoconducting properties of pure and reduced single crystals of composition Fe2?xCrxO3 where 0 ? x ? 0.47. It has been found that pure α-Fe2O3 is not a photoconductor. When defect-free crystals of α-Fe2O3 are reduced a surface layer of Fe3O4 is formed and the crystals exhibit photoconductivity. Removal of this layer resulted in the disappearance of photocurrents and an increase in the sample resistivity. A necessary condition for the observation of photocurrents in n-type Fe2O3 is that some Fe3O4 be present. In addition, it has been found that the substitution of chromium for iron in α-Fe2O3 results in a monotonically decreasing optical band gap as the chromium concentration, x, increases.  相似文献   

17.
The defect structure of divalent magnesium-dopedα-Fe2O3has been examined by Rietveld structure refinement of the X-ray powder diffraction data. The results show that the Mg2+ions occupy the vacant interstitial octahedral sites as well as substituting on the two adjacent octahedral Fe3+sites in the corundum-relatedα-Fe2O3structure. The structure therefore involves a linear cluster of three Mg2+ions replacing two Fe3+ions. Interatomic potential calculations indicate that this is the most energetically favorable defect cluster for the system.  相似文献   

18.
N2O decomposition was examined over a series of Al2O3-Fe2O3 mixed oxidic solids with composition ranging from 0 to 100% of Fe2O3. The catalytic activity of the solids runs parallel to the number of atoms of iron in the Al2−x FexO3 solid solution phase. Two compensation effects are present. The first corresponds to catalysts rich in alumina, and the second one to catalysts rich in hematite. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

19.
Vibrational chemiluminescence in the Δν1 = Δν3 = ?1 band of NO2 is observed both in the O + NO and O3 + NO reactions and shown to be emitted by molecules with up to 11 000 cm?1 of vibrational energy. Quenching rate constants of NO23 are estimated ranging from about 6 × 10?14 for Ar to about 3 × 10?12 cm3 s?1 for NO2. The ratio of vibrational to electronic emission is 0.06 ± 0.03 for O + NO and 5.3 ± 1.0 for O3 + NO. It is suggested that vibrationally excited NO2 is a major product of that channel of the O3 + NO reaction which forms ground-state NO2(2A1) directly.  相似文献   

20.
The thiocarbonyl-bridged complex Cp2Fe2(CO)3CS is obtained by the reaction of CpFe(CO)2? and (PhO)2CS in THF. Infrared and NMR spectra show that the compound exists in solution in interconverting cis and trans forms, but that the isomerization occurs more slowly than for the carbonyl analog [CpFe(CO)2]2. Most reagents which cleave [CpFe(CO)2]2, such as Br2, HgCl2, and O2/HBF4, do not give simple cleavage reactions with Cp2Fe2(CO)3CS. Reductive cleavage of Cp2Fe2(CO)3CS with Na(Hg) gives the thiocarbonyl anion CpFe(CO)(CS)?, which reacts with Ph3SnCl to form CpFe(CO)(CS)SnPh3. Methylamine reacts with CpFe(CO)(CS)SnPh3 to give CpFe(CO)(CNMe)SnPh3, while ethylenediamine gives the carbene complexes CpFe(CO)C(N2C2H6)SnPh3. The preparation of another new carbene complex, [CpFe(CO)2C(OMe)2]PF6, is also described.  相似文献   

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