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1.
方铁锰矿Mn2O3粉体的水热合成与表征   总被引:1,自引:0,他引:1  
方铁锰矿型 Mn2 O3是固相法合成锂离子二次电池正极材料 L i Mn2 O4 的最佳原料之一 [1] .以其为锰源 ,可以很容易地制备锂离子二次电池正极材料 L i Mn2 O4 尖晶石 .采用其它合成方法都难以得到方铁锰矿 Mn2 O3的纯相 ,而是得到含有 α,β和 γ型的混合相 ,这对合成性能优良的正极材料 L i Mn2 O4极为不利[2 ] .采用水热合成法不仅可以人工合成沸石 ,而且已广泛用于合成多种无机功能材料[3~ 5] .无机原位氧化还原沉淀水热合成法 [6 ]可使多步反应的分子在原位水平上进行接触和反应 ,分子的扩散自由程大大缩短 ,因而降低了扩散的时间…  相似文献   

2.
由于具有低成本、高安全性、组装简易方便等优点,水性可充电锌离子二次电池被认为是太阳能和风能的最佳储能装置,尤其是锌锰二次电池.目前,锰正极材料的研究较多集中在二氧化锰上,同时,也有关于Mn2O3的研究,但比容量及能量密度皆较低.本文合成了方铁锰矿Mn2O3并将其用于水性锌离子电池的正极材料,在0.2C倍率下充放时,获得...  相似文献   

3.
4.
采用水热合成法制备了AgNbO3粉末,运用XRD(X-ray diffraction),SEM(Scanning Electron Microscope)和UV Vis DRS (diffuse reflectance spectroscopy)对其表征,在可见光照射下通过降解亚甲基蓝,来评估样品的光催化活性,实验结果表明,目标化合物与固相合成法制备的AgNbO3相比较具有明显较高的催化活性,水热法制备的产物在光催化方面拥有广阔的应用前景.  相似文献   

5.
[CH3NH3][NH3(CH2)6NH3]H3[P2Mo2W16O62]·H2O的水热合成与表征   总被引:4,自引:0,他引:4  
首次合成了[CH3NH3][NH3(CH2)6NH3]H3[P2Mo2W16O62]·H2O,通过元素分析、红外光谱和X射线单晶衍射对合成产物进行了表征,并用TGA-DSC研究了化合物的热稳定性.晶体属单斜晶系,P21/m空间群,a=1.2596(3)nm,b=1.8715(4)nm,c=1.9816(4)nm,α=γ=90°,β=90.16(3)°,V=4.671(2)nm3,Z=2,Mr=4358.66,Dc=3.100g·cm-3,μ=19.978mm-1,F(000)=3792,R=0.0835,Rw=0.2026.结果表明,在晶体结构内形成了0.7364nm×0.8354nm的微孔.  相似文献   

6.
[C6N2H18]2[Mo5O15(HPO4)2]·H2O的水热合成与结构表征   总被引:6,自引:0,他引:6  
通过水热法合成了一个新化合物[C6N2H18]2[Mo5O15(HPO4)2]·H2O,并通过IR光谱、ICP、元素分析、差热与热重分析和X射线单晶衍射分析等手段进行了表征.结果表明,晶体属三方晶系,P3(2)21空间群,a=1.1231(1)nm,c=2.2802(5)nm,V=2.4911(7)nm3,Dx=2.835Mg/m3,Z=6,最后的一致性因子R=0.0227,wR=0.0675.阴离子中Mo5O15构成一环状结构,2个HPO4一个连在环的下方,一个连在环的上方,形成类似于“飞碟”状的结构,阳离子为2个质子化的四甲基乙二胺.  相似文献   

7.
标题化合物是在反应物摩尔比为V2O5∶H3PO4∶H2NCH2CH2NH2∶H2O=0.55∶4∶3.6∶265时, 175 ℃水热反应5 d合成的. 其结构特点是: 钒八面体[VO5N]共用角顶的氧形成“之”字型链, 链间由[PO4]共角顶连接成层; 乙二胺分子的一个N直接与V配位, 并伸向层间. 相邻层间存在强氢键. 晶体学数据: 单斜晶系, P21/c (No. 14), a=0.92108(2) nm, b=0.72851(1) nm, c=0.98204(2) nm, β=101.269(7)°, V=0.6462(4) nm3, Z=4, Dc=2.303 g•cm-3, R1=0.0417, wR2=0.0999.  相似文献   

8.
具有开放骨架结构的金属酸盐在作为微孔材料、非线性光学材料、催化剂载体和离子交换剂等方面具有应用前景 [1] .自从报道第一个具有微孔结构的磷酸铝 [2 ]以来 ,许多其它具有开放骨架结构的金属磷酸盐被合成出来 ,它们的性质和潜在的应用研究也备受关注 [3~ 8] .本文采用温和条件下的水热法 ,合成得到了具有螺旋链状结构的磷酸铟钠盐 [Na6 In4 [P7O2 4 ( OH) 5]· 4H2 O,并采用 X射线单晶衍射方法进行结构测定 ,其结构中包含了共顶角的多面体连接成的螺旋链 ,链间的连接形成多面体四元环和八元环 ,3个四元环围成了一个三配位氧为中心…  相似文献   

9.
The title compound, [Mn3(L)6(CH3OH)2]n·0.5nH2O (1), where HL=3,5-dirnethylbenzoic acid, was synthesized and its crystal structure was determined by X-ray diffraction structure analysis. The crystal is of triclinic,space group P1 with α=1.275 1(13) nm, b=1.354 6(14) nm, c=1.882 3(19) nm, α=110.826(1)°,β=94.358(2)°,γ=108.038(1)°, V=2.825 4(5) nm3, Z=1, Mr=2 265.77, Dc=1.332 g·cm-3,μ=0.723 mm-1, F(000)=1180, Rint=0.037, R=0.056 4, wR=0.128 5. In the crystal the manganese atom is six-coordinated by six oxygen atoms, completing an octahedral geometry. The molecules are connected by 3,5-dimethylbenzoic acid to form a 1D chain structure bridged. CCDC: 694097.  相似文献   

10.
自从1982年美国联合碳化公司(U.C.C.)开发出系列磷酸铝分子筛(AlPO4-n,n代表不同的骨架类型)[1]以来,新型微孔结构磷酸铝的开发一直吸引着人们的广泛关注[2].与此同时,杂原子磷酸铝分子筛的研究受到了人们的高度重视,许多元素(Fe,Mn,Co,Zn等)可以作为杂原子进入磷酸铝的分子筛骨架[3~5].其中,含有特殊催化活性的过渡金属离子Mn的磷酸铝备受关注[6,7].1999年,徐耀华等[8]合成出具有新颖三维开放骨架的磷酸铝Al9(PO4)12(C24H91N16)·17H2O.最近,Beitone等[9,10]研究了Zn和Fe元素在此骨架中的取代情况.本文中,我们首次将Mn元素引入…  相似文献   

11.
Thin PVA/manganese acetate composite fibers were prepared by using sol-gel processing and electrospinning technique. After calcinations of the above precursor fibers, Mn2O3 and Mn3O4 nanofibers with a diameter of 50-200 nm could be successfully obtained. The fibers were characterized by TG-DTA, Scanning electron microscopy, FT-IR, WAXD, respectively. The results showed that the crystalline phase and morphology of nanofibers were largely influenced by the calcination temperature.  相似文献   

12.
Fe3O4八面体微晶的水热法制备与表征   总被引:3,自引:0,他引:3  
在乙二醇与水( =5∶8)的混合溶剂中, 通过K4[Fe(CN)6]与NaOH在200 ℃水热反应12 h, 制备了Fe3O4的八面体. 采用X射线衍射仪、扫描电镜和透射电子显微镜对产物进行表征, 并在室温下测试了它的磁学性能, 结果表明, Fe3O4八面体为单晶面心立方相结构, 尺寸约为0.7~6.3 μm. 它的矫顽力(Hc)为77.5 Oe, 饱和磁化强度(Ms)为98.53 emu/g, 剩余磁化强度(Mr)为6.27 emu/g. 研究了乙二醇, NaOH的浓度, 反应温度和时间对产物形貌的影响, 结果表明乙二醇在Fe3O4八面体的形成过程中起着关键作用, 并提出了可能的生长机理.  相似文献   

13.
Mn2O3纳米结构的简易合成与电化学性质   总被引:1,自引:0,他引:1  
用简易的室温或水热方法制备出不同形貌的MnCO3微结构。经600 ℃热处理后,室温制备MnCO3转变成Mn2O3胶体片,而水热制备MnCO3样品则形成多孔Mn2O3纳米结构。然而,室温制备MnCO3经120 ℃热处理后形成Mn2O3晶相。制备样品经过XRD和SEM表征表明,热处理MnCO3前驱物形成Mn2O3过程导致产物形貌与结构变化。其形成机理又通过TEM和FTIR进一步研究。Mn2O3纳米结构的电容性质通过循环伏安法表征,结果表明Mn2O3形貌与结构对其电容有重要影响。  相似文献   

14.
Mn3O4的溶剂热法制备及晶粒生长动力学研究   总被引:2,自引:0,他引:2  
非化学计量M n3O4-δ由八面体的M n2O3-δ相与四面体的M nO相组成,结构中的氧空位是其催化活性中心[1]。M n3O4-δ用途广泛,其高催化活性可用于环保领域分解去除废气中的CO、N2O、NO与NH3等气体或从废气中去除有机物等[2~4],高纯四方相M n3O4-δ纳米晶适用于制作软磁性材料如高  相似文献   

15.
通过对未加添加剂的醋酸锰-乙醇体系的一种简易的水基热解过程,制备了Mn3O4多面体纳米晶体。借助X射线衍射仪(XRD)、扫描电子显微镜(SEM)、透射电子显微镜(TEM)、傅里叶变换红外光谱法(FTIR)、拉曼光谱和X-射线光电子能谱(XPS)等对Mn3O4的结构和形貌进行了表征。提出了Mn3O4多面体纳米晶体的形成机理。循环伏安法(CV)测试结果表明,所制得的Mn3O4电极呈现良好的赝电容性能。在扫描速率为5 mV.s-1时,得到了Mn3O4的最大比电容值173 F.g-1。  相似文献   

16.
MgFe2O4纳米粉体的水热合成及其表征(英)   总被引:3,自引:0,他引:3  
MgFe2O4 nanoparticles were hydrothermally synthesized at 150 ℃ using iron nitrate [Fe(NO3)3·9H2O], magnesium nitrate [Mg(NO3)2·6H2O] and sodium hydroxide (NaOH) as starting materials by carefully controlling the reaction conditions. The influences of several factors such as presence or absence of Na+, molar ratio of Fe3+ / Mg2+, concentration of mental ions, temperature and reaction time on resultant products were investigated in the hydrothermal process. The sample was characterized by X-ray diffraction (XRD) and transmission electron microscopy (TEM), and its magnetic properties were measured using vibrating sample magnetometer (VSM).  相似文献   

17.
By using Mn2+ and Mn3+ salts, and freshly extracted ovalbumin, Mn3O4 nanocrystals have been synthesized successfully. The X-ray diffraction results indicated that the synthesized nanoparticles have only the spinel structure without the presence of any other phase impurities. As the ovalbumin–water mixture was highly basic, the process did not require any use of base to increase the pH where hydrolysis took place. A gel formed where water soluble ovalbumin proteins served as a perfect matrix for entrapment of metal ions (Mn2+ and Mn3+). Upon heat treatment, the dried gel precursor decomposed into nanocrystalline Mn3O4. The discrepancy between the crystallite size from XRD and particle size SEM analysis reveals polycrystalline nature of the synthesized particles with this route. EPR analysis of Mn3O4 shows a narrow and symmetric line indicating the absence of hyperfine splitting.  相似文献   

18.
The kinetics of Mn2O3 digestion in various H2SO4 solutions (0.5-2.0 M) and at various temperatures (ambient to 80 °C) to form solid γ-MnO2 and soluble Mn(II) have been examined using X-ray diffraction. Using a modified first-order Avrami expression to describe digestion kinetics, rate constants in the range 0.02-0.98 h−1 were found for Mn2O3 disappearance, and 0.03-0.42 h−1 for γ-MnO2 formation, with higher H2SO4 concentrations and temperatures leading to faster conversion rates. Also, for a particular set of experimental conditions, the rate of γ-MnO2 formation was always slower than Mn2O3 disappearance. This was interpreted in terms of the solubility and stability of the soluble Mn(III) intermediated formed during the digestion. Activation energies for Mn2O3 dissolution and γ-MnO2 formation were also determined.  相似文献   

19.
Mn3O4 Hausmanite nanoparticles were prepared in aqueous solution by using metallic salt and hydrazine as precursor and reducing agent, respectively. The crystallite sizes ranged from 10 to 20 nm and the particle diameter distribution was very narrow and estimated between 20 and 30 nm. Influence of some parameters such as temperature, time of reaction, surfactant nature was studied for a synthesis in an aqueous medium. The as-made manganese oxides particles could be dispersed in an organic solvent containing stabilizing agents, according to perform the synthesis in an H2O/n-hexan two-phase medium. These nanoparticles were characterized by X-ray diffraction, infrared spectroscopy, scanning and transmission electron microscopies and nitrogen absorption measurements.  相似文献   

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