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1.
采用溶胶法制备了介孔碳/纳米金复合材料,并利用透射电子显微镜、扫描电子显微镜和X射线衍射仪进行了表征。将合成的复合材料修饰于玻碳电极表面,用循环伏安法同时测定多巴胺(DA)、抗坏血酸(AA)和尿酸(UA)。在pH 7.2磷酸盐缓冲溶液中,DA、AA和UA的氧化峰得到了很好的分离;和裸电极比,介孔碳/纳米金修饰电极对DA、AA和UA具有良好的电催化作用,DA、AA和UA的氧化峰的峰电流强度分别增加1.7,2.0,12倍,3种物质的浓度分别在0.20~45.8,4.0~792.0,0.06~166.0μmol·L-1范围内与其峰电流强度呈线性关系,检出限(3S/N)分别为0.075,7.5,0.021μmol·L-1。  相似文献   

2.
采用循环伏安法制备了聚三聚氰胺-石墨烯复合膜修饰电极(poly-(MA)-ERGO/GCE)。研究了抗坏血酸(AA)、尿酸(UA)和多巴胺(DA)在该修饰电极上的电化学行为。结果表明,该修饰电极对AA、UA和DA均有良好的电化学响应,且三者的氧化峰在该修饰电极上可完全分离。据此建立了在大量AA存在下同时测定UA和DA的新方法。在优化条件下,微分脉冲伏安法(DPV)测定UA和DA的线性范围均为1.0×10~(-8)~5.0×10-6mol·L~(-1),检出限(3sb)均为5.0×10~(-9)mol·L~(-1)。  相似文献   

3.
张英  任旺  李敏娇 《电化学》2012,(1):79-83
研究柠檬酸(CA)修饰玻碳电极(CA/GC)在抗坏血酸(AA)、多巴胺(DA)和尿酸(UA)混合体系中的循环伏安(CV)行为.结果表明,AA、DA和UA在CA/GC电极上氧化峰电流增大,且三者氧化峰电位明显分离(ΔEp(DA,AA)=170 mV,ΔEp(DA,UA)=130 mV,ΔEp(AA,UA)=300 mV).据此,可同时检测AA、DA和UA.在优化的实验条件下,AA、DA和UA的氧化峰电流与其浓度分别在2.0×10-6~1.5×10-3mol.L-1,6.0×10-7~1.0×10-3mol.L-1和6.0×10-7~1.0×10-3mol.L-1范围内呈线性关系.该电极重现性好,可用于盐酸多巴胺针剂DA、VC片剂AA及人体尿液UA的测定.  相似文献   

4.
通过电化学还原法制备MnO_2纳米线/还原石墨烯复合修饰电极(MnO_2-RGO/GCE),用于多巴胺(DA)的检测。采用扫描电镜和X-射线粉末衍射对不同的修饰电极微观形貌进行了表征,优化了电化学还原条件和测定DA实验条件。此外,还研究DA在裸电极及RGO或MnO_2-RGO修饰电极上的循环伏安响应。MnO_2-RGO/GCE复合修饰电极实现AA、DA和UA氧化峰的有效分离,AA-DA和DA-UA的氧化峰电位差分别为268和128 m V。检测DA的线性范围为0.06~1.0μmol/L和1.0~80μmol/L,检出限为1.0 nmol/L(S/N=3)。制备的MnO_2-RGO/GCE成功用于人血清样品的多巴胺含量分析。  相似文献   

5.
以三聚氰胺为原料, 采用热聚合法合成了类石墨烯状二维片状氮化碳(g-C3N4)纳米材料; 通过电沉积和高电位氧化的方法制得氧化聚咪唑(PImox)/g-C3N4修饰电极(PImox/g-C3N4/GCE). 采用扫描电子显微镜(SEM)和X射线粉末衍射仪(XRD)对g-C3N4纳米材料进行了表征; 通过循环伏安法(CV)和差分脉冲伏安法(DPV)考察了尿酸(UA)、 黄嘌呤(XA)和次黄嘌呤(HX)在该电极上的电化学行为. 结果表明, UA, XA和HX的检测线性范围分别为2.0~216.0, 5.0~542.0和5.0~778.0 μmol/L; 检出限分别为0.17, 0.30和0.30 μmol/L. 将该修饰电极用于实际样品(血清和尿液)中UA, XA和HX的同时测定, 加标回收率为98.4%~105.2%.  相似文献   

6.
采用三步法制备了金纳米粒子-石墨烯层层组装的复合材料,并将其修饰在玻碳电极上,制备成一种新型的同时检测抗坏血酸(AA)、多巴胺(DA)和尿酸(UA)的电化学传感器。采用扫描电子显微镜(SEM)对复合材料进行了表征,并研究了传感器对AA、DA、UA电催化性能。结果表明:该传感器对AA、DA和UA的氧化具有很好的催化和分离效果,可实现AA、DA和UA的同时测定。在三者共存体系中,AA-DA、DA-UA、AA-UA的氧化峰电位差分别为152mV、161mV和313mV。线性范围分别为1.996×10-5~5.580×10-3、1.996×10-6~5.478×10-3和1.000×10-6~1.000×10-3 mol/L,检出限分别为1.200×10-5、1.030×10-7和4.100×10-7 mol/L。该修饰电极选择性好、稳定性高,有望用于实际样品中AA、DA和UA的同时检测。  相似文献   

7.
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   

8.
研究多巴胺(DA)和抗坏血酸(AA)在聚伊文思蓝(Evans Blue)修饰电极上的伏安行为,建立差示脉冲伏安测定法.在pH4.5磷酸盐缓冲液中,聚伊文思蓝修饰电极对DA和AA有显著的增敏和电分离作用.DA和AA氧化峰电流与浓度分别在1.0×10-6~3.0×10-5mol/L和5.0×10-6~1.05×10-4mol/L范围内呈良好的线性关系,检测限分别为2.5×10-7mol/L和3.0×10-7mol/L.当DA与AA共存时,由该修饰电极检测的二者氧化峰电位差达184 mV,故可同时测定DA和AA,并有效消除其它组分对DA测定的干扰,已用于实际样品中DA和AA含量的测定,结果令人满意.  相似文献   

9.
采用电氧化法制备了一种新型γ-氨基丁酸(ABA)修饰的玻碳电极.X射线光电子能谱(XPS)和循环伏安法研究表明,ABA以单分子层状态以C—N键牢固地共价键合在电极表面.该修饰电极对多巴胺(DA)、尿酸(UA)和抗坏血酸(AA)都具有良好的电化学催化特性.在pH=7.0磷酸缓冲溶液中,DA,UA和AA分别于0.45,0.25和0.07V(vs.Ag/AgCl)有一个良好的、独立的阳极方波伏安峰,表明此修饰电极可用于这3种物质的同时测定.与DA,UA和AA的方波伏安峰电流呈线性关系的浓度范围分别为4.0~400,2.0~500和1.0~600μmol/L,检测限(3δ)分别为1.6,1.2和0.8μmol/L.该修饰电极具有良好的灵敏度、选择性和稳定性,并具有抗污染能力.  相似文献   

10.
将超声分散的氧化石墨烯(GO)悬浮液滴涂于玻碳电极(GCE)表面,制备成GO/GCE,并用扫描电子显微镜(SEM)和电化学阻抗谱(EIS)对GO/GCE进行表征,利用差分脉冲伏安法(DPV)、循环伏安法(CV)对多巴胺(DA)和尿酸(UA)进行了电化学测定。研究了pH对DA和UA电化学行为的影响并计算相关的动力学参数。结果表明:该修饰电极对DA和UA的氧化还原反应具有良好的电化学催化作用,在1.0~98.0μmol/L和0.5~90.0μmol/L范围内峰电流与DA和UA浓度呈良好的线性关系,检出限分别为0.50μmol/L和0.25μmol/L。而且可以在抗坏血酸(AA)共存下同时测定DA和UA。该传感器具有良好的选择性与稳定性,有望应用于DA和UA的同时测定。  相似文献   

11.
The properties of graphite electrode (Gr) modified with poly(diallyl dimethyl ammonium chloride) (PDDA) for the detection of uric acid (UA) in the presence of dopamine (DA) and high concentration of ascorbic acid (AA) have been investigated by cyclic voltammetry, differential pulse voltammetry and chronoamperometry. The polymer modified graphite electrode was prepared by a very simple method just by immersing the graphite electrode in PDDA solution for 20 minutes. The PDDA/Gr modified electrode displayed excellent electrocatalytic activity towards the oxidation of UA, DA and AA compared to that at the bare graphite electrode. The electrochemical oxidation signals of UA, DA and AA are well resolved into three distinct peaks with peak potential separations of 220 mV, 168 mV and 387 mV between AA‐DA, DA‐UA and AA‐UA respectively in cyclic voltammetry studies and the corresponding peak potential separations are 230 mV, 130 mV and 354 mV respectively in differential pulse voltammetry. The lowest detection limits obtained for UA, DA and AA were 1×10?7 M, 2×10?7 M and 800×10?9 M respectively. The PDDA/Gr electrode efficiently eliminated the interference of DA and a high concentration of AA in the determination of UA with good selectivity, sensitivity and reproducibility. The modified electrode was also successfully applied for simultaneous determination of UA, DA and AA in their ternary mixture.  相似文献   

12.
In this paper, a silver doped poly(L ‐valine) (Ag‐PLV) modified glassy carbon electrode (GCE) was fabricated through electrochemical immobilization and was used to electrochemically detect uric acid (UA), dopamine (DA) and ascorbic acid (AA) by linear sweep voltammetry. In pH 4.0 PBS, at a scan rate of 100 mV/s, the modified electrode gave three separated oxidation peaks at 591 mV, 399 mV and 161 mV for UA, DA and AA, respectively. The peak potential differences were 238 mV and 192 mV. The electrochemical behaviors of them at the modified electrode were explored in detail with cyclic voltammetry. Under the optimum conditions, the linear ranges were 3.0×10?7 to 1.0×10?5 M for UA, 5.0×10?7 to 1.0×10?5 M for DA and 1.0×10?5 to 1.0×10?3 M for AA, respectively. The method was successfully applied for simultaneous determination of UA, DA and AA in human urine samples.  相似文献   

13.
Multilayer films of negatively charged single‐wall carbon nanotubes (SWCNTs) and positively charged cetylpyridinium bromide (CPB) have been deposited on a glassy carbon electrode (GCE) using layer‐by‐layer (LBL) technique. The assembled multilayer films have been investigated by scanning electron microscopy (SEM), electrochemical impedance spectroscopy (EIS), and quartz crystal microbalance (QCM) measurements. The voltammetric signal of dopamine (DA), uric acid (UA), and ascorbic acid (AA) could be observed well‐separated with the assembled SWCNTs/CPB multilayer films in pH 7.0 PBS. The oxidation peak potentials of DA, UA, and AA are centered at about 169 mV, 292 mV and ?10 mV on differential pulse voltammograms (DPVs), respectively. The peak‐to‐peak potential separation was 123 mV, 179 mV, and 302 mV for DA‐UA, DA‐AA, and UA‐AA in DPVs, respectively. This permits the simultaneous detection of DA and UA in the presence of AA.  相似文献   

14.
制备了一种新颖的Nation-离子液体一多壁碳纳米管复合膜修饰电极,并研究了抗坏血酸(AA)、多巴胺(DA)和尿酸(uA)在该修饰电极上的电化学行为.该修饰电极结合了多壁碳纳米管良好的导电性、离子液体优良的催化性能及Nation的高选择性等优点,对AA、DA和UA的氧化具有很好的催化和分离效果,实现了AA、DA和UA的同时测定.在三者共存体系中,AA和DA、DA和UA的氧化峰电位差分别为148和167mV.对AA、DA和UA的同时检测,线性范围分别为5-3200、1~1100和1-300gmol/L,检出限分别为1.66、0.33和0.33gmol/L.该修饰电极选择性好、稳定性高、重现性好,有望用于实际样品中AA、DA和UA的同时检测.  相似文献   

15.
An ultrasensitive electrochemical biosensor was fabricated for electroanalytical determination of ascorbic acid(AA), dopamine(DA) and uric acid(UA) individually and simultaneously based on polypyrrole hollow nanotubes loaded with Au and Fe3O4 nanoparticles(NPs) uniformly(PPy@Au-Fe3O4). The PPy@Au-Fe3O4 nanotubes were synthesized in one-pot using MoO3 nanorods as templates and the polymerization of Py, the formation of Au and Fe3O4 NPs and the removel of MoO3 templates took place stimultaneously. Electrochemical studies reveal that PPy@Au-Fe3O4modified glassy carbon electrode(GCE) possesses excellent electro-catalytic activities toward the oxidation of AA, DA and UA. Their oxidation peak currents increase linearly in the concentration ranges of 1-2000 μmol/L for AA, 0.01-25 and 25-300 μmol/L for DA and 0.1-300 μmol/L for UA. Their detection limit values(S/N=3) were calculated as 0.45, 0.0049, and 0.051 μmol/L for AA, DA and UA in the individual detection. By changing the concentrations simultaneously, the calibration curves showed linearity to 1000, 200, and 200 μmol/L with detection limit of 0.39, 0.0060, and 0.060 μmol/L for AA, DA, and UA, respectively. Finally, the obtained biosensor was successfully applied to the detection of AA, DA, and UA with satisfactory results on actual samples.  相似文献   

16.
A novel electrode was developed through electrodepositing gold nanoparticles (GNPs) on overoxidized-polyimidazole (PImox) film modified glassy carbon electrode (GCE). The combination of GNPs and the PImox film endowed the GNPs/PImox/GCE with good biological compatibility, high selectivity and sensitivity and excellent electrochemical catalytic activities towards ascorbic acid (AA), dopamine (DA), uric acid (UA) and tryptophan (Trp). In the fourfold co-existence system, the peak separations between AA–DA, DA–UA and UA–Trp were large up to 186, 165 and 285 mV, respectively. The calibration curves for AA, DA and UA were obtained in the range of 210.0–1010.0 μM, 5.0–268.0 μM and 6.0–486.0 μM with detection limits (S/N = 3) of 2.0 μM, 0.08 μM and 0.5 μM, respectively. Two linear calibrations for Trp were obtained over ranges of 3.0–34.0 μM and 84.0–464.0 μM with detection limit (S/N = 3) of 0.7 μM. In addition, the modified electrode was applied to detect AA, DA, UA and Trp in samples using standard addition method with satisfactory results.  相似文献   

17.
Zhang Y  Su S  Pan Y  Zhang L  Cai Y 《Annali di chimica》2007,97(8):665-674
Trans-3-(3-pyridyl) acrylic acid (PAA) was deposited on glassy carbon electrode (GCE) by electropolymerization in pH 7.0 phosphate buffer solution (PBS). The poly (3-(3-pyridyl) acrylic acid) (PPAA) film modified glassy carbon electrode shows an excellent electrochemical response for dopamine (DA), ascorbic acid (AA) and uric acid (UA). The cyclic voltammetry oxidation peaks for DA and AA, DA and UA, AA and UA are separated by 150 mV, 130 mV and 280 mV, respectively. This permits the simultaneous determination of AA, DA and UA. The interference of AA with the determination of DA could be eliminated because of the electrostatic interaction between DA cations and the negatively charged PPAA film at pH 7.0. The anodic peak currents of DA, AA and UA increase linearly with concentration in the range of 1-40 micromol L(-1), 10-400 micromol L(-1) and 1.6-80 micromol L(-1), respectively, with a correlation coefficient (r) always higher than 0.998. The detection limit is 0.06 micromol L(-1), 0.8 micromol L(-1) and 1.1 micromol L(-1) for DA, AA and UA, respectively.  相似文献   

18.
Palraj Kalimuthu 《Talanta》2010,80(5):1686-319
This paper describes the simultaneous determination of ascorbic acid (AA), dopamine (DA), uric acid (UA) and xanthine (XN) using an ultrathin electropolymerized film of 2-amino-1,3,4-thiadiazole (p-ATD) modified glassy carbon (GC) electrode in 0.20 M phosphate buffer solution (pH 5.0). Bare GC electrode failed to resolve the voltammetric signals of AA, DA, UA and XN in a mixture. On the other hand, the p-ATD modified electrode separated the voltammetric signals of AA, DA, UA and XN with potential differences of 110, 152 and 392 mV between AA-DA, DA-UA and UA-XN, respectively and also enhanced their oxidation peak currents. The modified electrode could sense 5 μM DA and 10 μM each UA and XN even in the presence of 200 μM AA. The oxidation currents were increased from 30 to 300 μM for AA, 5 to 50 μM for DA and 10 to 100 μM for each UA and XN, and the lowest detection limit was found to be 2.01, 0.33, 0.19 and 0.59 μM for AA, DA, UA and XN, respectively (S/N = 3). The practical application of the present modified electrode was demonstrated by the determination of AA, UA and XN in human urine samples.  相似文献   

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