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1.
聚5-磺基水杨酸修饰电极上对苯二酚的电化学行为   总被引:13,自引:0,他引:13  
用循环伏安法将 5 磺基水杨酸修饰于玻碳电极表面 ,制备出对对苯二酚具有电催化作用的聚合物膜修饰电极。研究了对苯二酚 (HQ)在该聚合物薄膜修饰电极上的电化学行为。在 0 5mmol/LH2 SO4底液中 ,HQ在该电极上的线性范围为 2 0× 1 0 - 6~ 1 0× 1 0 - 4 mol/L。该修饰电极可将对苯二酚和邻苯二酚(CC)的氧化峰分开约 1 0 5mV  相似文献   

2.
对苯二酚在多壁碳纳米管修饰电极上的电化学行为研究   总被引:2,自引:0,他引:2  
采用循环伏安法、微分脉冲伏安法、计时安培法研究了对苯二酚在多壁碳纳米管修饰电极上的电化学行为,计算得到了碳纳米管修饰电极有效面积Aeff=23.9mm2以及对苯二酚电化学氧化过程的一些重要参数:传递系数α=0.630;控制步骤的反应电子数nα=1.03;反应速率常数k′=3.74×10-2cm/s;扩散系数D=2.85×10-6cm2/s。实验结果显示,本实验条件下对苯二酚在碳纳米管修饰电极上的氧化反应受扩散过程控制,为前行化学反应(CE),对苯二酚在失去电子之前先经历了一个脱氢的过程。微分脉冲伏安结果显示,催化氧化峰电流与对苯二酚浓度在1×10-4~6×10-6mol/L范围内呈良好的线性关系,检出限达4.0×10-7mol/L(S/N=3)。  相似文献   

3.
将经超声波处理的多壁碳纳米管液滴涂于碳糊电极上制成修饰电极(MWNTs/CPE).应用循环伏安法研究了酪氨酸(Tyr)在修饰电极上的电化学行为.测定结果表明,酪氨酸在3.5×10<'-6>~2.0×10<'-3>moL/L浓度范围内与峰电流成良好的线性关系.回归方程为Ip(μA)=0.058c(μmol/L)+5.21...  相似文献   

4.
用循环伏安法(CV)研究了水杨酸(SA)在多壁碳纳米管修饰玻碳电极上的电化学行为,并初步探讨了反应机理.实验结果表明,水杨酸在该电极上为一个2e/H~+的完全不可逆过程.在pH=5.0的磷酸盐缓冲溶液(PBS)中,用循环伏安法在该电极上测定了水杨酸.方法线性范围为2.0×10~(-5)~1.0×10~(-3)mol/L,检出限为8.93×10~(-6)mol/L.将该电极用于药品分析,结果令人满意.  相似文献   

5.
通过研究异烟肼在多壁碳纳米管修饰碳糊电极上的电化学行为建立了测定异烟肼的电化学方法。在pH6.8的磷酸氢二钠–柠檬酸缓冲溶液中,异烟肼在–1.114 V处能产生一明显还原峰,异烟肼在修饰电极上的反应是受吸附控制的2质子、2电子电极反应过程。研究发现还原峰峰电流大小与异烟肼浓度在5.00×10~(-3)~5.00 mmol/L内呈良好的线性关系,相关系数r=0.997 0,方法检出限为1.70×10~(-3) mmol/L,测定结果的相对标准偏差为3.11%(n=5),回收率为97.6%~103.6%。该方法简单、灵敏,精密度高,可应用于样品中异烟肼的测定。  相似文献   

6.
基于多壁碳纳米管修饰玻碳电极对阿替洛尔的催化作用,建立了测定阿替洛尔的电化学分析方法。多壁碳纳米管修饰玻碳电极与裸玻碳电极相比,显著提高了阿替洛尔的氧化峰电流,降低了氧化峰电位,提高了测定的灵敏度。该电极测定阿替洛尔的线性范围为4.9×10-6~6.3×10-4mol/L,检出限为2×10-6mol/L。对1.3×10-4mol/L阿替洛尔进行11次平行测定,相对标准偏差为4.4%。此法可用于阿替洛尔片剂中阿替洛尔的测定。  相似文献   

7.
制备了多壁碳纳米管(MWNT)修饰玻碳电极,并研究了咖啡酸在该电极上的电化学行为及其测定方法,与裸玻碳电极(GCE)相比,MWNT膜修饰电极(MWNT/GCE)能显著提高咖啡酸的氧化峰电流.在pH=3.29的B-R缓冲溶液中,咖啡酸在MWNT/GCE电极上出现1对准可逆的氧化还原峰,Epa=0.47 V,Epc=0.32 V,峰电流与其浓度在5.0×10-7~2.0×10-5 mol/L范围内成线性关系,检出限为5.0×10-7mol/L.实际样品测定的相对标准偏差(RSD)为0.82%(n=5),平均回收率为100.7%.MWNT膜对咖啡酸的电化学氧化有明显的催化作用.该法是一种快捷、可靠、灵敏的检测方法,可以用于咖啡酸含量的测定.  相似文献   

8.
运用循环伏安法、线性扫描伏安法、计时电量法等研究了盐酸左氧氟沙星在聚L-精氨酸/多壁碳纳米管修饰电极上的电化学行为。实验表明:盐酸左氧氟沙星在聚L-精氨酸/多壁碳纳米管修饰电极上的电极反应过程为等电子等质子吸附控制的不可逆过程,在pH=6.0的Na2HPO4-NaH2PO4支持电解质中,其氧化峰电流与浓度在7.0×10-6~1.0×10-4mol·L-1范围内呈良好的线性关系,相关系数R为-0.9992,检出限为5.0×10-6mol·L-1,样品测定回收率为98.26%~101.70%。  相似文献   

9.
马曾燕  李将渊  向伟 《应用化学》2009,26(2):224-228
多巴胺;L-半胱氨酸;多壁碳纳米管;修饰电极  相似文献   

10.
多壁碳纳米管-聚茜素红膜修饰电极测定多菌灵   总被引:2,自引:0,他引:2  
制备了多壁碳纳米管-聚茜素红膜(MWNT-PAR)修饰电极,用循环伏安法和线性扫描伏安法、计时电量法等研究多菌灵在修饰电极上的电化学行为.结果表明,多菌灵在MWNT-PAR修饰电极上是扩散控制的不可逆电氧化过程.实验测定了部分电极过程参数,并发现多菌灵氧化峰电流的一阶导数值与其浓度在5.0×10~(-6)~1.0×10~(-4) mol/L范围内呈线性关系,回归方程为:I_p ′(A)=-3.112×10~(-6)-1.198c(mol/L),R=-0.9953,其检出限为2.0×10~(-7) mol/L,回收率为99.0%~105.6%.  相似文献   

11.
报道了水合肼在碳纳米管修饰电极上的电化学行为以及水合肼测定的新方法。与裸玻碳电极相比,多壁碳纳米管修饰玻碳电极使水合肼的氧化峰电流显著提高,同时氧化过电位降低,测定灵敏度大为提高。优化了底液、pH、修饰剂量等测定条件。在最佳条件下,该修饰电极测定水合肼的线性范围为2.9×10-8~9.8×10-4mol/L,线性相关系数为-0.9945,检出限为1.0×10-9mol/L。对1.0×10-4mol/L的水合肼平行测定10次的相对标准偏差为4.4%。此方法已用于模拟水样中水合肼的测定。  相似文献   

12.
Electrochemical properties of nicotine at the glassy carbon electrode modified with multi-walled carbon nanotubes were explored. Nicotine underwent irreversible reduction at the modified electrode, which was an adsorption-controlled process with two protons and two electrons. The reductive peak current of nicotine significantly increased at the modified electrode compared with the bare glassy carbon electrode, suggesting that the multi-walled carbon nanotubes can enhance the electron transfer rate. The current was proportional to the concentration of nicotine over two line ranges, and the detection limit was 9.3 µM (at S/N?=?3). For ten parallel detections of 0.62 mM nicotine, the relative standard deviation was 2.67%, suggesting that the film modified electrode had excellent reproducibility. The modified electrode was applied to the direct determination of nicotine in tobacco samples with good sensitivity, selectivity and stability.  相似文献   

13.
水中对硝基苯酚主要来源于化工、制药行业,它有致癌作用。人们已对它的测定方法进行了大量的研究,最早采用的测定方法是分光光度法,其检测限偏高;色谱法测定对硝基苯酚,操作繁琐,仪器昂贵,分析成本高。后来又发展了一种操作更方便的直接用于测定的电化学方法。本文旨在利用碳纳米管对对硝基苯酚的吸附性能,研究对硝基苯酚在多壁碳纳米管修饰电极上的电化学行为。  相似文献   

14.
采用电聚合、滴涂及多层修饰方法制备了4种修饰电极,百里香酚在几种修饰电极上均是不可逆电氧化反应,其中聚甲苯胺蓝/多壁碳纳米管修饰电极的电催化效果最佳,过电位降低了111mV,氧化峰电流增大了5倍。在pH为7.69的PBS溶液中,百里香酚在聚甲苯胺蓝/多壁碳纳米管修饰电极上是电子转移数和质子数均为1的扩散控制不可逆电氧化过程,扩散系数D=4.8470×10-4cm2/s,电极有效面积A=0.0383cm2。氧化峰电流ip与浓度c在9.0×10-6~5.0×10-4mol/L范围内呈良好的线性关系:ip(A)=-3.781×10-5-0.0491c(mol/L),相关系数R=-0.9958,样品测定回收率为96.88%~101.50%。  相似文献   

15.
An electrochemical sensor has been constructed for the determination of adriamycin (ADM) that is based on a glassy carbon electrode modified with silver nanoparticles and multi-walled carbon nanotubes with carboxy groups. The modified electrode was characterized by scanning electron microscopy and exhibits a large enhancement of the differential pulse voltammetric response to ADM. Signals are linear with the concentrations of ADM in the range from 8.2?×?10?9 M to 19.0?×?10?9 M, with a detection limit of 1.7?×?10?9 M. The sensor is highly reproducible and exhibits excellent stability. It was to detect calf thymus DNA.  相似文献   

16.
A simple and rapid electrochemical method is developed for the determination of trace-level norfloxacin, based on the excellent properties of multi-walled carbon nanotubes (MWCNTs). The MWCNTs/Nafion film-coated glassy carbon electrode (GCE) is constructed and the electrochemical behavior of norfloxacin at the electrode is investigated in detail. The results indicate that MWCNTs modified glassy carbon electrode exhibited efficiently electrocatalytic oxidation for norfloxacin (NFX) with relatively high sensitivity, stability and life time. Under conditions of cyclic voltammetry, the current for oxidation of selected analyte is enhanced significantly in comparison to the bare GCE. The electrocatalytic behavior is further exploited as a sensitive detection scheme for the analyte determinations by linear sweep voltammetry (LSV). Under optimized condition in voltammetric method the concentration calibration range and detection limit (S/N=3) are 0.1-100 micromol/L and 5 x 10(-8)mol/L for NFX. The proposed method was successfully applied to NFX determination in tablets. The analytical performance of this sensor has been evaluated for detection of the analyte in urine as a real sample.  相似文献   

17.
Zeng B  Huang F 《Talanta》2004,64(2):380-386
A novel multi-walled carbon nanotubes/(3-mercaptopropyl)trimethoxysilane (MPS) bilayer modified gold electrode was prepared and used to study the electrochemcial behavior of fluphenazine and determine it. Fluphenazine could effectively accumulate at this electrode and produce two anodic peaks at about 0.78 V and 0.93 V (versus SCE). The peak at about 0.78 V was much higher and sensitive, thus it could be applied to the determination. Various conditions were optimized for practical application. Under the selected conditions (i.e. 0.05 M pH 3.5 HCOOH-HCOONa buffer solution, 5 μl 1 mg ml−1 multi-walled carbon nanotubes for Φ=2.0 mm electrode, accumulation at open circuit for 180 s), the anodic peak current was linear to fluphenazine concentration in the range from 5×10−8 to 1.5×10−5 M with correlation coefficient of 0.9984, the detection limit was 1×10−8 M. For a 1×10−5 M fluphenazine solution, the relative standard deviation of peak current was 2.51% (n=8). This method was successfully applied to the determination of fluphenazine in drug samples and the recovery was 96.4-104.4%. The electrode could be easily regenerated and exhibited some selectivity, but some surfactants reduced the peak current greatly. The modified electrode was characterized by alternating current impedance and electrochemical probe.  相似文献   

18.
Electrochemical behavior of metol, which coexists with p-benzeneiol (HQ) at a glassy-carbon electrode modified with multiwall carbon nanotubes (MWNT/GCE), is studied in the thesis. The results indicate that metol yields a well-defined peak of which two concomitant reductive peaks separate and the potential separation reaches to 178 mV, and that concomitant HQ has almost no interference with the reduction signal of metol. The values of the reductive peak current (I pc) are found to be linearly related to metol concentration over the range of 8.0 × 10−2 −1.0 × 10−5 M, with a detection limit of 5.0 × 10−6 M. Some common matter has no interference with the determination of metol. Published in Russian in Elektrokhimiya, 2006, Vol. 42, No. 1, pp. 31–35. The text was submitted by the authors in English.  相似文献   

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