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1.
二茂铁修饰碳黑微电极同时测定多巴胺和抗坏血酸   总被引:2,自引:0,他引:2  
研究了神经递质多巴胺(DA)和抗坏血酸(AA)在二茂铁修饰碳黑微电极上的电化学行为。实验结果表明,在pH4.5的磷酸盐中,DA在该电极上的线性范围为2.0×10-6~4.0×10-3mol/L,检出限(3σ)为1.0×10-6mol/L;AA在该电极上的线性范围为6.0×10-6~1.0×10-3mol/L,检出限(3σ)为2.0×10-6mol/L;用这种电极可以同时测定多巴胺,抗坏血酸。  相似文献   

2.
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   

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.
采用滴涂法制备了单壁碳纳米管修饰的纳米碳纤维电极,研究了多巴胺(DA)、抗坏血酸(AA)及其混合溶液在修饰前后电极上的电化学行为。在20 mmol/L Tris-HCl(pH 7.4)缓冲溶液中,修饰电极对DA和AA具有很好的电催化作用。采用差示脉冲伏安法对DA与AA混合溶液氧化峰电流与浓度的关系进行定量分析,DA和AA的氧化峰电流在1.0×10-7~5.0×10-5mol/L和1.0×10-5~1.0×10-3mol/L范围内与浓度呈线性关系,其线性回归方程及相关系数分别为Ip=0.0012c+4×10-9,r=0.9907;Ip=10-5c+7×10-10,r=0.9974,两种物质的检测限分别达到8.0×10-9mol/L和2×10-6mol/L。  相似文献   

5.
研究了十六烷基三甲基溴化铵(CTMAB)/多壁碳纳米管修饰玻碳电极的制备以及多巴胺和抗坏血酸在该修饰电极上的电化学行为。在CTMAB和多壁碳纳米管的协同作用下,该修饰电极对多巴胺和抗坏血酸均具有显著的催化氧化作用,多巴胺和抗坏血酸的氧化峰电位分别为223mV和15mV,实现了在抗坏血酸共存时测定多巴胺。在pH7.0的磷酸盐缓冲溶液中,多巴胺和抗坏血酸的线性范围分别为2.0×10-6~2.0×10-3mol/L和4.0×10-5~1.0×10-2mol/L,检出限分别为6.0×10-7mol/L和1.0×10-5mol/L。  相似文献   

6.
用循环伏安法在强酸性水溶液中制备出氯化5-邻[4-(1-咪唑基)丁氧基]苯基-10,15,20-三苯基卟啉锰聚合膜修饰玻碳电极。该电极具有良好的电化学活性,对抗坏血酸(AA)及多巴胺(DA)有明显的催化作用,而且在同一缓冲溶液中用微分脉冲伏安法扫描二者峰电位差达240mV,此时已达到完全分离。将该电极应用于DA和AA的同时测定,其线性范围分别为2.0×10-6~1.0×10-4mol/L和6.5×10-7~2.6×10-5mol/L;检出限分别为1.0μmol/L和0.39μmol/L。二者在微分脉冲伏安法扫描时各有独立的电流响应峰,互不干扰。该电极重现性和稳定性好,在空气中放置3个月以上经处理后电化学活性无下降趋势。  相似文献   

7.
制备了钯掺杂聚L-精氨酸修饰玻碳电极(Pd-PA/GCE),研究了5-羟基色氨酸(5-HTP)和多巴胺(DA)在该修饰电极上的电化学行为,建立了同时测定5-HTP和DA的电化学新方法。在pH=2.0的磷酸缓冲溶液中,扫描速率为160mV/s时,DA在该电极上产生一对氧化还原峰,峰电位分别为0.515V和0.464V;5-HTP在该电极上产生一个氧化峰,峰电位为0.643V,两者的氧化峰电位差达128mV。在最优条件下,同时测定5-HTP和DA的线性范围分别为:9.00×10-7~1.00×10-5 mol/L、1.00×10-5~4.00×10-5 mol/L(5-HTP);7.00×10-7~1.00×10-5 mol/L、1.00×10-5~4.00×10-5 mol/L(DA)。检出限分别为7.0×10-7 mol/L和5.0×10-7 mol/L。方法可用于药剂中5-HTP和DA的测定。  相似文献   

8.
汪海燕  柳鹏  王晔  金葆康 《电化学》2007,13(2):127-131
在裸金电极上自组装4,4-二甲基联苯硫醇(MTP)膜(MTP/AuSAMs),再电还原氯金酸溶液修饰纳米金,得纳米金双巯基修饰金电极(NG/MTP/Au).研究了多巴胺(DA)和抗坏血酸(AA)在NG/MTP/Au上的电化学行为,发现该修饰电极对DA、AA的氧化具有良好的电催化作用,多巴胺(DA)和抗坏血酸(AA)的氧化峰电位差达到155mV,可以实现对此二组分混合溶液的选择性测定.差分脉冲法测得的峰电流与DA、AA浓度分别在5.0×10-7~1×10-4mol.L-1和3.5×10-6~1.0×10-3mol.L-1范围内呈线性关系,检测限(3σ)分别为1.5×10-7mol.L-1和1.2×10-6mol.L-1,相关系数0.998.  相似文献   

9.
应用电化学还原法自制的锑膜修饰玻碳电极(GCE)研究了多巴胺(DA)和抗坏血酸(AA)在此修饰电极上的电化学性质.DA和AA在此修饰电极上的氧化电位依次为0.676 V和0.360 V,两者相差316 mV.此电位差值远大于两者在裸GCE电极上的差值(136 mV).据此,可用锑膜修饰的GCE,用示差脉冲伏安法同时测定DA和AA.测定DA和AA的线性范围分别为6.80×10-7~1.33×10-2,2.60×10-6~1.20×10-3mol·L-1,方法的检出限依次为1.50×10-7,6.70×10-7mol·L-1.应用所提出的方法分析了DA的针剂和AA的片剂样品,所得结果与标示值相符,并测得方法的回收率在97.9%~99.3%之间.  相似文献   

10.
采用电聚合方法将茜素红非共价修饰到碳纳米管上,制备了聚茜素红/碳纳米管修饰电极.以多巴胺(DA)和抗坏血酸(AA)为模型化合物,研究该修饰电极的电催化作用.结果表明:电聚合法使茜素红牢固地修饰到碳纳米管上,能显著提高电极的灵敏度和分子识别性能.DA和AA的氧化峰位分离达240 mV.在AA的存在下,DA的差分脉冲伏安法峰电流在1×10-7~1×10-5 mol/L范围内呈良好的线性关系,检测下限达1×10-7 mol/L.  相似文献   

11.
Graphite electrode is modified by casting multi-walled carbon nanotubes (MWCNTs) wrapped with polystyrene sulphonate (PSS) onto the surface of the bare graphite electrode. The modified electrode was characterized by cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS). The behavior of the modified electrode towards the oxidation of ascorbic acid (AA), dopamine (DA) and uric acid (UA) has been determined by cyclic voltammetry (CV), differential pulse voltammetry (DPV) and chronoamperometry (CA). The modified electrode showed better electrocatalytic activity towards AA, DA and UA compared to bare graphite electrode. The electrochemical oxidation signals of AA, DA and UA are well separated into three distinct peaks with peak potential difference of 222, 128 and 350 mV between AA-DA, DA-UA and AA-UA respectively in CV studies and corresponding peak potential separation in DPV are 228, 120 and 348 mV. This modified electrode was successfully used for simultaneous determination of AA, DA and UA in ternary mixture.  相似文献   

12.
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   

13.
在抗坏血酸存在下用L-赖氨酸修饰玻碳电极测定多巴胺   总被引:3,自引:0,他引:3  
黄燕生  陈静  许兵  邵会波 《化学通报》2006,69(9):656-660
采用电化学氧化法制备了L-广赖氮酸单分子层修饰玻碳电极,研究了多巴胺(DA)和抗坏血酸(AA)在该电极上的电化学行为。结果表明,L-广赖氨酸单分子层修饰玻碳电极不仅能改善多巴胺和抗坏血酸的电化学行为,而且能将多巴胺和抗坏血酸二者在裸电极上的完全重叠的单氧化峰分开成为两个完全独立的氧化峰,循环伏安(CV)图上峰间距为507mV,差分脉冲伏安(DPV)图上峰间距为460mV,由此可实现在AA的共存下对样品中的DA进行选择性测定。  相似文献   

14.
Lei Zhang 《Mikrochimica acta》2008,161(1-2):191-200
A covalently modified glassy carbon electrode with cysteine has been fabricated via an electrochemical oxidation procedure and was applied to induce the electrochemical differentiation between dopamine (DA) and ascorbic acid (AA). Based on the electrostatic interactions between the negatively charged groups on the electrode surface and DA and AA, the modified electrode enhanced the oxidation of DA, reducing the overpotential by 180 mV, and hindered the oxidation of AA, shifting the oxidation potential positively by 170 mV. The peak current for DA at the modified electrode was greatly enhanced and that for AA was significantly decreased, which allows the determination of DA in the presence of AA. The differential pulse peak current was linearly dependent on DA concentration over the range of 5 × 10−6–2 × 10−4 mol L−1. The detection limit was 1.8 × 10−6 mol L−1. The selectivity and sensitivity for dopamine is due to charge discrimination and analyte accumulation. The modified electrode has been applied to the determination of DA in the presence of AA. Correspondence: L. Zhang, Department of Chemistry, College of Life and Environmental Science, Shanghai Normal University, Guilin Rd 100, Shanghai 200234, P.R. China  相似文献   

15.
任旺  张英  李敏娇 《电化学》2011,17(3):343-346
应用电沉积方法制备柠檬酸修饰电极(CA/GC), 差分脉冲法研究多巴胺(DA)和肾上腺素(EP)在该修饰电极上的电化学行为.结果表明, 两样品DA、EP在该电极的还原峰电位差380 mV, 而抗坏血酸(AA)在此电位区无还原峰, 因此可实现该修饰电极对DA和EP的同时检测, 而且高浓度AA不发生干扰.在pH 6.0的磷酸盐缓冲液中, DA和EP还原峰电流与其浓度分别在1.0×10-6 ~ 6.0×10-5 mol•L-1和2.0×10-6 ~ 6.0×10-5 mol•L-1 范围内呈线性关系.CA/GC电极制备简单, 重现性好, 可望用于多巴胺针剂(DA)和肾上腺素针剂(EP)的同时检测  相似文献   

16.
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   

17.
A nano-composite of DNA/poly(p-aminobenzensulfonic acid) bi-layer modified glassy carbon electrode as a biosensor was fabricated by electro-deposition method. The DNA layer was electrochemically deposited on the top of electropolymerized layer of poly(p-aminobenzensulfonic acid) (Pp-ABSA). Scanning electron microscopy, X-ray photoelectron spectroscopy and electrochemical impedance spectrum were used for characterization. It demonstrated that the deposited Pp-ABSA formed a 2-D fractal patterned nano-structure on the electrode surface, and which was further covered by a uniform thin DNA layer. Cyclic voltammetry and electrochemical impedance spectrum were used to characterize the deposition, and demonstrated the conductivity of the Pp-ABSA layer. The biosensor was applied to the detection of dopamine (DA) and uric acid (UA) in the presence of ascorbic acid (AA). In comparison with DNA and Pp-ABSA single layer modified electrodes, the composite bi-layer modification provided superior electrocatalytic actively towards the oxidation of DA, UA and AA, and separated the originally overlapped differential pulse voltammetric signals of UA, DA and AA oxidation at the bare electrode into three well-defined peaks at pH 7 solution. The peak separation between AA and DA, AA and UA was 176 mV and 312 mV, respectively. In the presence of 1.0 mM AA, the anodic peak current was a linear function of the concentration of DA in the range 0.19-13 microM. The detection limit was 88 nM DA (s/n=3). The anodic peak current of UA was also a linear function of concentration in the range 0.4-23 microM with a detection limit of 0.19 microM in the presence of 0.5 mM AA. The superior sensing ability was attributed to the composite nano-structure. An interaction mechanism was proposed.  相似文献   

18.
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   

19.
Graphene/p-aminobenzoic acid composite film modified glassy carbon electrode (Gr/p-ABA/GCE) was first employed for the sensitive determination of dopamine (DA). The electrochemical behavior of DA at the modified electrode was investigated by cyclic voltametry (CV), differential pulse voltametry (DPV) and amperometric curve. The oxidation peak currents of DA increased dramatically at Gr/p-ABA/GCE. The modified electrode was used to electrochemically detect dopamine (DA) in the presence of ascorbic acid (AA). The Gr/p-ABA composite film showed excellent electrocatalytic activity for the oxidation of DA in phosphate buffer solution (pH 6.5). The peak separation between DA and AA was large up to 220 mV. Using DPV technique, the calibration curve for DA determination was obtained in the range of 0.05-10 μM. The detection limit for DA was 20 nM. AA did not interfere with the determination of DA because of the very distinct attractive interaction between DA cations and the negatively Gr/p-ABA composite film. The proposed method exhibited good stability and reproducibility.  相似文献   

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