404 resultados para Pt catalyst


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A new copper-(Schiff-base) complex, derived from (S)-2-amino-1,1-di(3,5-di-t-butylphenyl)propanol, 2-hydroxy-5-nitrobenzaldehyde and copper acetate monohydrate, was used as an efficient catalyst for the cyclopropanation of styrene with diazoacetates, affording ees of up to 98%. (C) 2000 Elsevier Science Ltd. All rights reserved.

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A zirconium-based Ziegler-Natta catalytic system has been tested in the dimerization of 1-butene. It was found that the concentration of Et2AlCl, Ph3P and PhONa as well as the reaction temperature had great influences on the activity and selectivity of the catalyst. Under the optimum reaction conditions, the conversion of 1-butene is 91.9%, and the selectivity of dimers is 76.7%. Basic ligands such as Ph3P and PhONa can inhibit isomerization of 1-butene to 2-butene effectively. In addition, the metal hydride mechanism was also suggested and some indirect evidence was obtained in favor of this mechanism.

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考察了陈化温度对新癸酸钕(简称Nd)、氢化二异丁基铝(简称Al)和氯化二异丁基铝(简称Cl)组成的催化剂共聚合丁二烯-异戊二烯的影响。结果表明,催化剂的陈化温度对聚合产物的相对分子质量分布有明显的影响,采用较高陈化温度(50℃)所得催化剂,在催化剂3组分的加入顺序为Al、Cl、Nd或Cl、Nd、Al时,可获得窄相对分子质量分布(小于3.00)共聚物;催化剂3组分的加入顺序和陈化温度对共聚物的微观结构影响不大,2种单体单元的顺式-1,4-结构摩尔分数均在98%以上

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比较了Pt和Ir催化剂在中性NaClO4电解液中对NH3氧化的电催化活性和选择性。发现NH3和NH4OH在Pt和Ir催化剂上的电氧化性能相似,因而可用NH4OH代替NH3进行研究。NH4OH在Pt和Ir催化剂上氧化峰峰电流密度与NH4OH浓度呈很好的线性关系,因而Pt和Ir均能作为控制电位电解型NH3传感器的催化剂。当NH4OH浓度为0.013 mol/L时,NH3在Pt和Ir催化剂上的氧化峰分别位于0.4和0.8 V,NH4OH在Pt催化剂上的氧化峰峰电位负于在Ir催化剂上的,这是Pt催化剂的优点,但NH4OH在Ir催化剂上的氧化峰峰电流密度为Pt催化剂上的2.5倍以上,说明NH4OH在Ir催化剂上的检测灵敏度远高于在Pt催化剂上的。

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It was reported for the first time that the electrocatalytic activity of the Carbon-supported Pd-Ir (Pd-Ir/C) catalyst with the suitable atomic ratio of Pd and Ir for the oxidation of formic acid in the direct formic acid fuel cell (DFAFC) is better than that of the Carbon-supported Pd (Pd/C) catalyst, although Ir has no electrocatalytic activity for the oxidation of formic acid. The potential of the anodic peak of formic acid at the Pd-Ir/C catalyst electrode with the atomic ratio of Pd and Ir = 5:1 is 50 mV more negative than that and the peak current density is 13% higher than that at the Pd/C catalyst electrode.

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制备了壁厚约5 nm、管径为140~220 nm薄壁碳纳米管(CNTs)和壁厚约50 nm,管径为80~200 nm厚壁碳纳米管。研究了浓HNO3处理对不同壁厚CNTs结构和表面基团的影响。结果表明,经硝酸处理后,厚壁CNTs的双电层充放电电量(Qd)和表面含氧基团氧化所需电量(Qo)分别增加了1.34和0.098 mC,薄壁CNTs的Qd和Qo分别增加了5.69和0.175 mC。表明与厚壁CNTs相比,薄壁CNTs易被切断,表面碳原子易被氧化。当用常规液相还原法将Pt粒子沉积在薄壁和厚壁CNTs上后,由于浓HNO3处理过的薄壁CNTs具有大的比表面积和多的含氧基团,Pt粒子更容易均匀的吸附在薄壁CNTs表面,因此,制得的Pt/CNTs催化剂对甲醇氧化有很高的电催化活性。