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951.
952.
Bourikas K Stavropoulos J Garoufalis CS Kordulis C Petsi T Lycourghiotis A 《Chemistry (Weinheim an der Bergstrasse, Germany)》2011,17(4):1201-1213
The interfacial chemistry of the impregnation step involved in the preparation of nickel catalysts supported on titania is presented. Several methodologies based on deposition data, pH measurements, potentiometric mass titrations, and microelectrophoresis have been used in conjunction with diffuse reflectance UV/Vis/NIR spectroscopy, simulations, and semiempirical quantum chemical calculations. Three mononuclear inner-sphere complexes were formed at the compact layer of the "titania/electrolyte solution" interface: A monosubstituted, dihydrolyzed complex above a terminal oxo group, a disubstituted, dihydrolyzed complex above two terminal adjacent oxo groups, and a disubstituted, nonhydrolyzed complex above one terminal and one bridging adjacent oxo groups. The monosubstituted, dihydrolyzed complex predominates. The contribution of the disubstituted configurations is also important at very low Ni(II) surface concentration, but it decreases as the Ni(II) surface concentration increases. In addition, bi- and trinuclear inner-sphere complexes were formed. The receptor site involves one bridging and two terminal oxo groups in the first case and two bridging and three terminal oxo groups in the second case. The relative surface concentrations of these configurations increase initially with Ni(II) surface concentration and then remain practically constant. The understanding of these interfacial processes at a molecular level is very important to shift the catalytic synthesis from an art to a science as well as to obtain strict control of the impregnation step and, to some extent, of the whole preparative sequence. This study is very relevant to the synthesis of submonolayer/monolayer nickel catalysts supported on TiO(2) following equilibrium deposition filtration (otherwise called equilibrium adsorption). 相似文献
953.
954.
Zhang H Liu P Li F Liu H Wang Y Zhang S Guo M Cheng H Zhao H 《Chemistry (Weinheim an der Bergstrasse, Germany)》2011,17(21):5949-5957
Anatase TiO(2) microspheres with controlled surface morphologies and exposed crystal facets were directly synthesized on metal titanium foil substrates by means of a facile, one-pot hydrothermal method without use of any templating reagent. The obtained products were characterized using X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray photoelecron spectroscopy (XPS), and the focused ion beam (FIB) technique. The sizes of the resultant microspheres ranged from 1.1 to 2.1 μm. The transformation of anatase TiO(2) microspheres with exposed {001} facets surface to nanosheets surface with {101} facets was achieved by simply controlling the hydrothermal reaction time. The anatase TiO(2) microspheres with exposed square-shaped plane {001} facets were obtained by controlling the reaction time at 1 h. The prolonged reaction time transforms the anatase TiO(2) microspheres with exposed square-shaped plane {001} facets to eroded {001} facets then to a nanosheet surface with exposed {101} facets. With hydrothermal synthesis, the surface morphological structure and crystal facets formation are highly dependent on dissolution/deposition processes, which can be strongly influenced by attributes, such as pH of the reaction media, the total concentration of dissolved and suspended titanium species, and the concentration of fluoride in the reaction solution. The changes of these attributes during the hydrothermal process were therefore measured and used to illustrate the morphology and crystal-facet transformation processes of anatase TiO(2) microspheres. The surface morphologies and crystal-facet transformations during hydrothermal processes were found to be governed by the compositional changes of the reaction media, driven by dynamically shifted dissolution/deposition equilibria. The photocatalytic activities of the photoanodes made of anatase TiO(2) microspheres were evaluated. The experimental results demonstrated that the photocatalytic activity of anatase TiO(2) microspheres with exposed {001} facets was found to be 1.5 times higher than that of the anatase TiO(2) microspheres with exposed {101} facets. 相似文献
955.
956.
957.
采用熔体快淬法制备了(Mg70.6 Ni29.4)90Nd10的非晶贮氢合金带,用X射线衍射仪和高分辨电镜对该合金在充放电循环过程中的组织结构演变进行了动态跟踪.结果表明:(Mg70.6Ni29.4)90Nd10贮氢合金在充放电循环过程中由非晶态慢慢晶化为纳米晶,初生相NdMg2 Ni9在循环过程中逐渐转化为Mg2 Ni,α-Mg和Nd2H5相.电化学性能测试表明,由于微观结构的变化对其放电容量的影响过程分为3个阶段:首先是前两个循环的活化过程,在第3个循环达到放电容量最高值(580.5 mAh·g-1);接下来是放电容量显著降低的4~10个循环阶段;最后是放电容量保持稳定的11 ~20个循环.研究发现NdMg2 Ni9相的存在和保持合金的非晶结构是提高镁基电极合金循环稳定性的重要因素. 相似文献
958.
在氩气气氛和1173 K保温条件下对La0.63 Gd0.2 Mg0.17Ni3.1 Co0.3 Al0.1储氢合金进行不同时间(t=8 ~168 h)的热处理,采用电感耦合等离子发射光谱(ICP)、X射线衍射(XRD)、电子探针显微分析方法(EPMA)和电化学测试分析方法对比研究了退火时间对合金显微组织演化和电化学性能的影响.研究结果表明,铸态合金组织由Ce2 Ni7型、Gd2Co7型、Pr5 Co19型、PuNi3型和CaCu5型相组成,其Ce2 Ni7型相的丰度为78.9%,随退火时间的延长,退火合金中Ce2 Ni7型相的丰度逐渐增加,当退火时间t=168 h时其相丰度达到94.5%,Ce2 Ni7型相结构的晶胞参数和晶胞体积随退火时间增加而减小.电化学测试分析表明,退火合金电极的电化学性能与Ce2 Ni7型相的丰度有密切关系,退火时间对合金电极的活化性能影响不大,但合金电极放电容量随退火时间的延长逐渐提高,当t=168 h时,合金电极放电容量达到最大值386.8mAh·g-1;退火时间对合金电极循环稳定性的提高和改善有不同程度的影响,当退火时间t=16~168 h时,经100次充放电循环后,其电极容量保持率S100=90.3%~91.5%.热处理能有效改善合金电极电化学反应的动力学性能,但不同退火时间对合金电极的高倍率放电性能影响不明显. 相似文献
959.
以感应熔炼和不同的热处理工艺制备了La4MgNi19合金, 用X射线衍射(XRD)和电化学测试系统研究了该合金的相结构和电化学性能. 结构分析表明: 当热处理工艺为900 °C+水淬时, 合金主要由CaCu5结构的LaNi5相和少量未知相组成; 当热处理工艺为900 °C退火时, 合金主要由Pr5Co19、Ce5Co9结构的(La, Mg)5Ni19相及少量CaCu5结构的LaNi5相组成. 淬火和退火后合金的电化学循环稳定性(S100)分别为49.7%及76.0%, 合金电极的电化学性能和相结构密切相关. 退火热处理有利于生成Pr5Co19、Ce5Co9型相. 在La-Mg-Ni 系储氢合金中, La4MgNi19合金电化学循环稳定性不及La3MgNi14合金. 相似文献
960.
使用密度泛函理论(DFT)B3LYP/6-31G(d)方法优化得到了3(5)-(9-蒽基)吡唑及其衍生物的基态(S0)分子结构, 使用单激发组态相互作用(CIS)/6-31G(d)方法优化得到这些分子的第一单重激发态(S1)的几何结构, 并使用含时密度泛函理论(TD-DFT)B3LYP/6-311++G(d,p)方法计算了它们的吸收和发射光谱. 计算结果表明, 与3(5)-(9-蒽基)吡唑相比, 无论取代基是吸电子基团还是供电子基团, 衍生物的吸收和发射峰均发生红移, 并且当取代基―R=―BH2, ―CCl3, ―CHO, ―NH2时衍生物有较长的吸收波长和发射波长. 相似文献