991 resultados para Partículas compósitas Al2O3-Cu


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【目的】研究食品加工剩余物板栗壳对水中Cu2+的吸附性能,为其用于含铜废水的处理提供理论依据。【方法】研究吸附质溶液pH、Cu2+质量浓度、吸附剂用量、粒径、吸附温度和时间对板栗壳吸附Cu2+效果的影响,探讨吸剂和吸附剂循环利用次数对解吸和再生的影响;并采用穿透曲线和洗脱曲线对动态吸附进行了分析。【结果】吸附质溶液pH值为6、Cu2+起始质量浓度为20 mg/L、吸附剂粒径为0.25 mm时的吸附效果较好,该吸附为放热过程,升高温度虽然可以加快吸附进程,但却降低了吸附量和去除率。Na+和Ca2+对Cu2+的解吸置换能力较弱,0.1mol/L HCl可使96.1%的Cu2+得以解吸回收。通过Thomas模型预测,在固定床柱吸附条件下饱和吸附量为10.94mg/g。【结论】板栗壳对水中Cu2+的吸附性能较好,因而具有很好的应用前景。

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研究了板栗壳吸附Cu2+的平衡、动力学和热力学特征并对吸附工艺进行设计.采用Langmuir和Freundlich等温线对静态吸附平衡数据进行了拟合,同时采用准一级动力学和准二级动力学模型对静态吸附动力学数据进行了拟合,并计算了吸附过程的热力学参数自由能变(ΔGo)、焓变(ΔHo)和熵变(ΔSo).结果表明,平衡实验数据符合Langmuir等温吸附模型,分离因子RL值在0~1之间,为有利吸附;动力学实验数据符合准二级动力学方程,平衡吸附量随Cu2+起始浓度增大而增大;ΔHo和ΔSo分别为12.206kJ·mol-1和21.534J·mol-·1K-1,ΔGo为负值,表明板栗壳吸附Cu2+为放热过程,可以自发进行,吸附过程增加了固液界面的混乱度.基于Langmuir等温吸附模型推导出的板栗壳用量计算公式可用于预测将一定体积一定起始浓度Cu2+溶液经过吸附降至所需浓度的板栗壳用量.

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Methyl radicals are generated by pyrolysis of azomethane, and the condition for achieving neat adsorption on Cu(110) is described for studying their chemisorption and reaction characteristics. The radical-surface system is examined by X-ray photoemission spectroscopy, ultraviolet photoemission spectroscopy, temperature-programmed desorption, low-energy electron diffraction (LEED), and high-resolution electron energy loss spectroscopy under ultrahigh vacuum conditions. It is observed that a small fraction of impinging CH3 radicals decompose into methylene possibly on surface defect sites. This type of CH2 radical has no apparent effect on CH3(ads) surface chemistry initiated by dehydrogenation to form active CH2(ads) followed by chain reactions to yield high-mass alkyl products. All thermal desorption products, such as H-2, CH4, C2H4, C2H6, and C3H6, are detected with a single desorption peak near 475 K. The product yields increase with surface coverage until saturation corresponding to 0.50 monolayer of CH3(ads). The mass distribution is, however, invariant with initial CH3(ads) coverage, and all desorbed species exhibit first-order reaction kinetics. LEED measurement reveals a c(2 x 2) adsorbate structure independent of the amount of gaseous exposure. This strongly suggests that the radicals aggregate into close-packed two-dimensional islands at any exposure. The islanding behavior can be correlated with the reaction kinetics and is deemed to be essential for the chain propagation reactions. Some relevant aspects of the CH3/Cu(111) system are also presented. The new results are compared with those of prior studies employing methyl halides as radical sources. Major differences are found in the product distribution and desorption kinetics, and these are attributed to the influence of surface halogen atoms present in those earlier investigations.