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211.
以多壁碳纳米管(MWCNTs)修饰玻碳电极为工作电极,采用阳极溶出线性扫描法研究了铜离子的电化学测定方法。探讨了MWCNTs修饰层数、富集电位、富集时间、溶液pH、支持电解质对峰电流的影响。实验表明,铜离子浓度在1.0×10-8~1.0×10-5mol·L-1范围内与峰电流呈良好的线性关系,检测限为2.0×10-9mol·L-1,且该电极具有良好的稳定性和抗干扰能力。  相似文献   
212.
目的研究3种改性活性炭对菜地、河流底泥、荷花底泥镉吸附性的影响。方法对活性炭进行酸改性、碱改性和氧化改性,采用双硫腙分光光度法测定镉含量。结果对实验土样,最佳活性炭添加量为0.025 g/g。随着初始镉含量的升高,土壤对镉的吸附量不断增大。结论 3种改性活性炭相比普通活性炭对湿地土壤的镉吸附量均有不同程度的提升,荷花底泥中,酸性、氧化改性活性炭相比普通活性炭,吸附效果提高7.7%,8.3%,吸附效果提升显著。  相似文献   
213.
Lysidine (k2C) is one of the most modified pyrimidine RNA bases. It is a cytidine nucleoside, in which the 2-oxo functionality of the heterocycle is replaced by the ϵ-amino group of the amino acid lysine. As such, lysidine is an amino acid-containing RNA nucleoside that combines directly genotype (C-base) with phenotype (lysine amino acid). This makes the compound particularly important in the context of theories about the origin of life and here especially for theories that target the origin of translation. Here, we report the total synthesis of the U-derivative of lysidine (k2U), which should have the same base pairing characteristics as k2C if it exists in the isoC-like tautomeric form. To investigate this question, we developed a phosphoramidite building block for k2U, which allows its incorporation into RNA strands. Within RNA, k2U can base pair with the counter base U and isoG, confirming that k2U prefers an isoC-like tautomeric structure that is also known to dominate for k2C. The successful synthesis of a k2U phosphoramidite and its use for RNA synthesis now paves the way for the preparation of a k2C phosphoramidite and RNA strands containing k2C.  相似文献   
214.
基于石墨烯纳米材料和循环伏安法技术制备了聚对氨基苯磺酸/石墨烯修饰电极并研究了氧氟沙星(OFL)在该修饰电极上的电化学行为,建立了一种简单快速灵敏测定氧氟沙星的电化学分析方法。 结果表明,与玻碳电极相比,对氨基苯磺酸/石墨烯电化学修饰电极能显著提高氧氟沙星的峰电流。 在优化条件下,其检测线性范围为1~600 μmol/L,最低检测限为(S/N=3)0.33μmol/L。 该修饰电极具有较好的重现性和稳定性,用于实际样品氧氟沙星滴眼液的测定,效果良好。  相似文献   
215.
In this work 12 different ionic liquids (ILs) have been used added as co‐binders in the preparation of modified carbon paste electrodes (IL–CPEs) used for the voltammetric analysis of dopamine in Britton‐Robinson buffer. The ionic liquids studied were selected based on three main criteria: (1) increasing chain length of alkyl substituents (studying 1‐ethylimidazolium and ethyl, propyl, butyl, hexyl and decylmethylimidazolium bis(trifluoromethylsulfonyl)imide ionic liquids); (2) nature of the counter ion (dicyanamide, bis(trifluoromethylsulfonyl)imide and hexafluorophosphate) in 1‐butyl‐3‐methylimidazolium ionic liquids; and (3) cation ring structures (1‐butyl‐3‐methylimidazolium, 1‐butyl‐1‐methylpiperidinium, 1‐butyl‐1‐methylpyrrolidinium and 1‐butyl‐3‐methylpyridinium) in bis(trifluoromethylsulfonyl)imide or hexafluorophosphate (1‐butyl‐3‐methylimidazolium or 1‐butyl‐3‐methylpyridinium as cations) ionic liquids. The use of IL as co‐binders in IL–CPE results in a general enhancement of both the sensitivity and the reversibility of dopamine oxidation. In square wave voltammetry experiments, the peak current increased up to a 400 % when 1‐ethyl‐3‐methylimidazolium bis(trifluoromethylsulfonyl)imide was used as co‐binder, as compared to the response found with the unmodified CPE. Experimental data provide evidence that electrostatic and steric effects are the most important ones vis‐à‐vis these electrocatalytic effects on the anodic oxidation of dopamine on IL–CPE. The relative hydrophilicity of dicyanamide anions reduced the electrocatalytic effects of the corresponding ionic liquids, while the use of 1‐ethyl‐3‐methylimidazolium hexafluorophosphate or 1‐ethyl‐3‐methylimidazolium bis(trifluoromethylsulfonyl)imide (two relatively small and highly hydrophobic ionic liquids) as co‐binders in IL–CPE resulted in the highest electrocatalytic activity among all of the IL–CPE studied.  相似文献   
216.
In the present study, we report a facile method for preparing a porous MWCNTs/ZIF‐67 nanocomposite with the help of a morphology‐maintained ZIF‐67 in situ growth on multi‐walled carbon nanotubes. Interesting, the MWCNTs/ZIF‐67 nanocomposite demonstrated excellent electrochemical activity for hydroquinone (HQ) and catechol (CC) attribute to the effective interconnections ZIF‐67 crystals and MWCNTs. The analytical curves for HQ and CC obtained by differential pulse voltammetry (DPV) were linear in the range from 0.5 to 100 μM. Benefitting from the excellent conductivity of MWCNTs as well as the high surface area and porosity of ZIF‐67, the advanced nanocomposite displayed good reproducibility, high selectivity and excellent stability, and was successfully employed to assay the content of dihydroxybenzene isomers in the lake water samples.  相似文献   
217.
本文合成了铕-联吡啶的二元配合物Eu(bpy)2(NO3)3(H2O)2,用元素分析、红外及紫外光谱对配合物进行了表征.采用循环伏安法,研究了用Nafion将Eu(bpy)2(NO3)3(H2O)2修饰于金电极上的电化学发光行为.讨论了介质、pH对该体系电化学发光性质的影响,推测了Eu(bpy)2(NO3)3(H2O)2电化学发光的机理.结果表明:在没有共反应试剂存在的条件下,Eu(bpy)2(NO3)3(H2O)2在pH 8.0的硼砂缓冲溶液中可以产生较强的电化学发光,其发光体可能为Eu*(bpy)2(NO3)3(H2O)2.  相似文献   
218.
聚天冬氨酸修饰玻碳电极伏安法检测阿魏酸   总被引:1,自引:0,他引:1  
通过在水溶液中直接电聚合的方法制备了聚天冬氨酸修饰玻碳电极.在pH为4.5,0.1 mol.L-1HAc-NaAc缓冲溶液中,修饰电极对阿魏酸表现出良好的吸附能力,显著地提高了阿魏酸的电信号强度.探讨了聚天冬氨酸修饰玻碳电极的作用机理,建立了阿魏酸的快速检测方法.在浓度为9.1×10-7~3.0×10-3mol.L-1范围内,阿魏酸的微分脉冲氧化峰电流与其浓度呈线性关系,检出限为3.1×10-7mol.L-1.此方法用于中成药逍遥丸中痕量阿魏酸的检测,回收率为97.9%~102.2%.  相似文献   
219.
废旧橡胶粉改性沥青感温性的评价   总被引:6,自引:1,他引:5  
采用高剪切工艺,备了三种废旧橡胶粉改性沥青;利用针入度指数法评价了改性沥青的感温性,采用当量软化点、当量脆点、4℃延度评价了改性沥青的高温稳定性和低温稳定性。结果表明,改性沥青的感温性得到很大程度的改善,当量软化点提高约7℃,当量脆点降低(8-10)℃,4℃延度提高20cm,说明废旧橡胶粉对沥青的感温性改性效果显著。  相似文献   
220.
Electrochemical impedance spectroscopy is finding increasing use in electrochemical sensors and biosensors, both in their characterisation, including during successive phases of sensor construction, and in application as a quantitative determination technique. Much of the published work continues to make little use of all the information that can be furnished by full physical modelling and analysis of the impedance spectra, and thus does not throw more than a superficial light on the processes occurring. Analysis is often restricted to estimating values of charge transfer resistances without interpretation and ignoring other electrical equivalent circuit components. In this article, the important basics of electrochemical impedance for electrochemical sensors and biosensors are presented, focussing on the necessary electrical circuit elements. This is followed by examples of its use in characterisation and in electroanalytical applications, at the same time demonstrating how fuller use can be made of the information obtained from complete modelling and analysis of the data in the spectra, the values of the circuit components and their physical meaning. The future outlook for electrochemical impedance in the sensing field is discussed.  相似文献   
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