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1.
以甲烷-二氧化碳重整制合成气为实例,设计探究性实验,将合成气的制备和现代分析技术应用于化工专业实验的教学实践中以提高学生的创新和实践能力。实验包括催化剂的制备,催化剂的性能评价和催化剂的表征等3大部分。采用工业最常用的浸渍法制备含有不同助剂的Ni/X/γ-Al2O3(X为Co,Fe,MgO,CeO2)催化剂,以甲烷-二氧化碳重整反应评价其催化性能,并采用XRD、H2-TPR、BET和TG对催化剂的微观结构进行表征。结合催化剂的性能评价结果和表征结果,探讨不同助剂对镍基催化剂性能的改善效果及机制。通过开设该实验,可以让学生了解化工学科的前沿知识以及现代分析技术的基本原理和用途,掌握专业的实验操作、数据处理和谱图绘制方法,提高学生的专业素养和综合能力。 相似文献
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利用电化学沉积法在碳纳米管纤维(CNTFs)上沉积了镍磷合金,对比了不同循环圈数、不同镍磷比例下制备的碳纳米管纤维负载镍磷合金(Ni-P/CNTFs)电极在中性电解质溶液中的电催化析氢性能,发现当电沉积液中镍磷比为2:1时,沉积50圈时制备出的样品具有最佳的电催化析氢性能,产生10 mA·cm-2电流密度仅需138 mV过电势,塔菲尔(Tafel)斜率为83 mV·dec-1,同时具有良好的稳定性.并且在保持催化性能不变的前提下,样品可以进行弯曲,扩展了应用领域. 相似文献
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在溶剂热的条件下,合成了两例金属-有机配位聚合物:{[Ni(H2O)2(1,3-BIP)2]·TFBDC}n(1)和{[Cu3(H2O)4(1,3-BIP)6]·(BTC)2·(H2O)15}n(2)(1,3-BIP为1,3-二(咪唑)丙烷,H2TFBDC为2,3,5,6-四氟对苯二甲酸和H3BTC为1,3,5-均苯三酸),并利用红外光谱、元素分析和X-射线单晶衍射等技术手段对其结构进行了表征.X-射线单晶衍射结果表明配位聚合物1呈现一维环形链构型,并通过分子间氢键作用进一步连接形成三维超分子网络结构.配位聚合物2呈现出(4,4)拓扑的二维层状结构.此外,研究了两例配位聚合物的热稳定性能. 相似文献
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本研究通过临氢热解方法处理委内瑞拉减压渣油沥青质,通过电感偶合等离子体质谱仪(ICP MS)、紫外-可见光光谱仪(UV-vis)、高温气相色谱-原子发射检测器联用仪(HT GC-AED)和傅里叶变换离子回旋共振质谱(FT-ICR MS)等手段分析表征反应产物,探究沥青质的分子组成与结构,以及镍和钒化合物的存在形态。实验结果表明,随着临氢热解反应温度从330℃升高至410℃,反应产物的甲苯可溶物收率由64%下降至19%,可被GC-AED检测到的镍、钒化合物的含量大幅度升高,镍和钒卟啉的分子组成分布也随反应温度的升高呈现出规律性的变化。 相似文献
6.
采用多周期的电化学循环伏安(CV)法在泡沫镍(NF)上一步制备了镍基纳米材料修饰电极(Ni(OH)2/NF)用于α-糖苷酶抑制剂的酶抑制活性评价,并基于此建立了一种简便的中药糖苷酶抑制剂筛选方法。采用X射线粉末衍射仪和扫描电镜表征修饰电极表面的结构和形貌;采用CV法和计时电流法测试电极的电化学性能。结果表明,Ni(OH)2/NF传感器检测复杂酶体系中的葡萄糖具有良好的电化学响应,灵敏度高达3222μA·mmol/(L·cm2),线性范围为3.0~6000μmol/L,检出限低至0.9μmol/L (S/N=3)。采用临床降糖药物阿卡波糖验证了此传感器用于α-糖苷酶活性检测的可行性;并将传感器应用于莲须提取液的酶抑制效果评价,发现莲须具有一定的α-糖苷酶抑制活性,其半数抑制浓度(IC50)为3.31 g/L。本研究结果表明,研制的传感器适用于α-糖苷酶抑制活性分析,为天然降糖药物筛选提供了一种新方法。 相似文献
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In view of the continuously worsening environmental problems, fossil fuels will not be able to support the development of human life in the future. Hence, it is of great importance to work on the efficient utilization of cleaner energy resources. In this case, cheap, reliable, and eco-friendly grid-scale energy storage systems can play a key role in optimizing our energy usage. When compared with lithium-ion and lead-acid batteries, the excellent safety, environmental benignity, and low toxicity of aqueous Zn-based batteries make them competitive in the context of large-scale energy storage. Among the various Zn-based batteries, due to a high open-circuit voltage and excellent rate performance, Zn-Ni batteries have great potential in practical applications. Nevertheless, the intrinsic obstacles associated with the use of Zn anodes in alkaline electrolytes, such as dendrite, shape change, passivation, and corrosion, limit their commercial application. Hence, we have focused our current efforts on inhibiting the corrosion and dissolution of Zn species. Based on a previous study from our research group, the failure of the Zn-Ni battery was caused by the shape change of the Zn anode, which stemmed from the dissolution of Zn and uneven current distribution on the anode. Therefore, for the current study, we selected K3[Fe(CN)6] as an electrolyte additive that would help minimize the corrosion and dissolution of the Zn anode. In the alkaline electrolyte, [Fe(CN)6]3– was reduced to [Fe(CN)6]4– by the metallic Zn present in the Zn-Ni battery. Owing to its low solubility in the electrolyte, K4[Fe(CN)6] adhered to the active Zn anode, thereby inhibiting the aggregation and corrosion of Zn. Ultimately, the shape change of the anode was effectively eliminated, which improved the cycling life of the Zn-Ni battery by more than three times (i.e., from 124 cycles to more than 423 cycles). As for capacity retention, the Zn-Ni battery with the pristine electrolyte only exhibited 40% capacity retention after 85 cycles, while the Zn-Ni battery with the modified electrolyte (i.e., containing K3[Fe(CN)6]) showed 72% capacity retention. Moreover, unlike conventional organic additives that increase electrode polarization, the addition of K3[Fe(CN)6] not only significantly reduced the charge-transfer resistance in a simplified three-electrode system, but also improved the discharge capacity and rate performance of the Zn-Ni battery. Importantly, considering that this strategy was easy to achieve and minimized additional costs, K3[Fe(CN)6], as an electrolyte additive with almost no negative effect, has tremendous potential in commercial Zn-Ni batteries.![]()
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10.
CMSX-4 is the second-generation nickel-based single crystal superalloy used widely in the world. The oxidation resistance and corrosion resistance of CMSX-4 alloy can be improved by adding trace lanthanum (La), cerium (Ce) and other rare earth elements. A method for the simultaneous determination of La and Ce in CMSX-4 nickel-based superalloy by wet dissolution-inductively coupled plasma mass spectrometry was established. The sample was heated and dissolved under normal pressure by aqua regia and hydrofluoric acid, and the interference of fluorine ion was eliminated by using perchloric acid. The amount of dissolved acid and the digestion conditions were optimized. The limits of detection were 0.23 μg/g for La and 0.85 μg/g for Ce under optimized conditions. The spiked recoveries were 95.0%–98.9% with the relative standard deviations of 1.3%–3.9%, which can meet the requirements of accurate and rapid determination of La and Ce in CMSX-4 nickel-based superalloy. © 2023, Youke Publishing Co.,Ltd. All rights reserved. 相似文献