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1.
碳纳米管负载铂颗粒酶电极葡萄糖传感器   总被引:6,自引:0,他引:6  
朱玉奴  彭图治  李建平 《分析化学》2004,32(10):1299-1303
以碳纳米管负载纳米铂颗粒修饰玻碳电极 (CNT Pt/GCE)为基底 ,用明胶固定葡萄糖氧化酶(GOD) ,构建了电流型葡萄糖生物传感器 (GOD/CNT Pt/GCE)。在实验中 ,GOD/CNT Pt/GCE显示了良好的分析性能 ,与常规铂电极葡萄糖传感器 (GOD/Pt)相比较 ,测定葡萄糖的检出限从 6 .7× 10 -3 mol/L下降到8.3× 10 -4mol/L ;工作电位从 0 .6 5V下降至 0 .4 5V ;响应时间从 30s下降至 5s左右。实验结果表明 ,具有高度电催化活性的CNT Pt/GCE可作为酶传感器的一种新型基体电极。  相似文献   

2.
运用循环伏安法(CV),计时库仑法(CC),计时电流法(CA)研究了萘乙酸(NAA)在玻碳电极(GCE),多壁碳纳米管修饰玻碳电极(MWCNTs/GCE)和多壁碳纳米管-离子液体修饰玻碳电极(MWCNTs-IL/GCE)上的电化学行为及电化学动力学性质.实验结果表明,NAA在GCE电极上于1.00V附近有一不可逆氧化峰...  相似文献   

3.
碳纳米管负载纳米铂修饰电极及电催化氧化H2O2的研究   总被引:14,自引:0,他引:14  
采用化学气相沉积法在碳纳米管(CNT)上负载Pt纳米颗粒,并制备了CNT-Pt修饰玻碳电极(CNT-Pt/GCE).研究了该修饰电极在磷酸缓冲液中对H2O2的电催化氧化作用以及实验条件的影响.计算了H2O2在CNT-Pt/GCE上的电极反应速率常数.结果表明,CNT-Pt/GCE对H2O2的电化学氧化具有良好的催化作用,电极反应速率常数比铂电极高约2.65倍.初步探讨了电催化氧化机理,为酶电化学传感器的研制提供了一条新的途径.  相似文献   

4.
基于多壁碳纳米管(MWCNTs)和聚十六烷基三甲基溴化铵(p-CTAB)的高导电性、高增敏性,制备了MWCNTs、p-CTAB修饰的玻碳电极(GCE),将其作为工作电极(MWCNTs/p-CTAB/GCE),用于快速测定水和土壤中双酚A(BPA)的含量。以GCE为工作电极,采用循环伏安法(CV)对0.5 g·L^(-1) CTAB溶液扫描20圈,得到p-CTAB修饰的GCE(p-CTAB/GCE);吸取1.96 g·L^(-1) MWCNTs标准溶液5μL,滴涂在p-CTAB/GCE表面,干燥后得到MWCNTs/p-CTAB/GCE。水样经过滤,分取2 mL与0.3 mol·L^(-1)磷酸盐缓冲溶液(pH 7.0)8 mL混匀后待测;土壤样品25 g经风干、研磨、过筛后,用乙醇50 mL提取两次,浓缩至约1 mL,用无水乙醇定容至10 mL,分取2 mL与0.3 mol·L^(-1)磷酸盐缓冲溶液(pH 7.0)8 mL混匀后待测。以MWCNTs/p-CTAB/GCE为工作电极,钛棒为对电极,饱和甘汞电极为参比电极,设置搅拌速率为800 r·min^(-1),于0.2 V富集待测样品溶液中的BPA 150 s,采用差分脉冲伏安法(DPV)测定BPA的含量。扫描电子显微镜表征结果显示,MWCNTs/p-CTAB/GCE表面呈多孔空隙和多孔网状结构。以DPV、CV和电化学阻抗谱法考察了BPA在MWCNTs/p-CTAB/GCE上的电化学行为,结果表明BPA在该电极上的电化学氧化反应是一个受吸附控制的不可逆反应,BPA的浓度在0.08~20μmol·L^(-1)内与其对应的氧化峰电流呈线性关系,检出限为0.02μmol·L^(-1)。用同一支MWCNTs/p-CTAB/GCE重复测定BPA标准溶液10次,测定值的相对标准偏差为5.0%。对实际样品进行加标回收试验,BPA的回收率为82.0%~106%,测定值的相对标准偏差(n=5)为1.6%~8.1%。  相似文献   

5.
采用石英晶体微天平(QCM)技术, 监测了裸金(Au)电极、电沉积纳米金的金电极(Aued/Au)、多壁碳纳米管(MWCNTs)修饰的金电极(MWCNTs/Au)以及MWCNTs 修饰后再电沉积纳米金的金电极(Aued/MWCNTs/Au)上葡萄糖氧化酶(GOx)的吸附过程, 测算了吸附固定的GOx质量. 通过阳极恒电位检测吸附酶与葡萄糖发生酶反应所产生的过氧化氢, 考察了这些酶电极的安培响应, 并测算了各吸附态GOx的质量比生物活性(MSBAi).也通过循环伏安法研究酶的直接电化学, 测算了各吸附态GOx的电活性百分数(EAPi). 实验结果表明, 酶吸附量和酶电极的安培响应满足MWCNTs/Au > Aued/MWCNTs/Au > Aued/Au > Au 的顺序; MSBAi满足Au > Aued/MWCNTs/Au > Aued/Au > MWCNTs/Au的顺序; 而EAPi则满足MWCNTs/Au > Aued/MWCNTs/Au > Aued /Au > Au的顺序. 根据酶和纳米材料的亲疏水作用以及酶的吸附量对实验结果进行了合理解释, 也定量验证了电极上吸附酶分子的总生物活性与酶电极的安培响应呈正相关关系, 所得数据和结论有助于纳米材料固定酶及其安培酶电极的研究.  相似文献   

6.
采用电聚合方法制备三聚氰胺(MA)膜修饰玻碳电极(GCE),然后采用原位恒电位沉积法制备金纳米颗粒(Au),并将其修饰于膜电极表面,制得纳米金/三聚氰胺修饰玻碳电极(Au/MA/GCE)。用扫描电子显微镜(SEM)对修饰电极进行表面形貌和元素成分分析。用循环伏安法研究亚硝酸根(NO2-)在该修饰电极上的电化学行为发现,NO2-在0.85 V出现一灵敏的氧化峰。在优化的实验条件下,NO2-在1.0×10-5~1.0×10-3mol/L浓度范围内与其氧化峰电流成线性关系,检测下限为8.9×10-7mol/L。将修饰电极用于实际样品中NO2-的检测,效果良好。  相似文献   

7.
采用滴涂法和电化学沉积法制备了纳米铂和多壁碳纳米管修饰玻碳电极(Pt/MWCNTs/GCE)。通过循环伏安法研究了对苯二酚在该电极上的电化学行为,结果表明:在酸性溶液中,对苯二酚在Pt/MWCNTs/GCE上产生了一对明显的可逆氧化还原峰。对苯二酚的氧化峰电流与其浓度在1.0×10-6~1.0×10-2 mol·L-1范围内呈线性关系,检出限为5.0×10-7 mol·L-1。对1.0×10-3 mol·L-1对苯二酚标准溶液连续测定8次,测定值的相对标准偏差为0.10%。以空白样品为基体进行加标回收试验,所得回收率在98.0%~104%之间。  相似文献   

8.
以表面处理多壁碳纳米管(MWCNTs)和硝酸银为原料,利用硼氢化钠还原法制备了纳米银/多壁碳纳米管复合材料(AgNPs/MWCNTs),并通过紫外-可见吸收光谱、红外光谱、拉曼光谱和X射线衍射进行表征。采用滴涂法将该纳米复合材料修饰至玻碳电极表面,得到纳米银/多壁碳纳米管修饰电极(AgNPs/MWCNTs/GCE)。以AgNPs/MWCNTs/GCE为工作电极,研究了缓冲溶液、pH值、支持电解质和扫描速度对磺胺甲■唑(SMZ)电化学反应活性的影响。结果表明,与多壁碳纳米管、纳米银单独修饰电极相比,该纳米复合材料修饰电极对SMZ显示了更高的电催化活性。优化条件下,SMZ浓度在3.0×10~(-7)~5.0×10~(-5) mol/L范围内与峰电流呈线性关系,检出限(S/N=3)为6.4×10~(-8) mol/L。该方法操作简单、快速,可用于河水样品中SMZ的检测。  相似文献   

9.
基于MOF-199和多壁碳纳米管(MWCNTs)成功构建了对乙酰氨基苯酚(AP)的电化学传感器。通过水热法合成MOF-199,借助超声分散将MWCNTs成功包覆在MOF-199的表面,该MOF-199/MWCNTs复合材料修饰玻碳电极(GCE)具有良好的电化学和电催化性能。结果显示,MOF-199/MWCNTs/GCE修饰电极对AP具有较宽的线性范围(0.1~60μmol/L)和较低的检出限(0.071μmol/L)。此外,MOF-199/MWCNTs/GCE还具有优良的选择性、重现性和稳定性,具有良好的应用前景。  相似文献   

10.
王存  张毅  孟丽  赵欣  王跃 《分析测试学报》2017,36(9):1124-1128
采用滴涂法得到多壁碳纳米管(MWCNTs)修饰的玻碳电极(GCE),通过电沉积方法将3-氨基-5-巯基-1,2,4-三唑(TA)沉积在MWCNTs/GCE表面,制备了聚(3-氨基-5-巯基-1,2,4-三唑)/多壁碳纳米管修饰电极(p TA/MWCNTs/GCE)。采用循环伏安法(CV)和示差脉冲伏安法(DPV),研究了尿酸(UA)、黄嘌呤(XA)和次黄嘌呤(HX)在该修饰电极上的电化学行为。结果表明,该修饰电极对UA、XA和HX均有较好的电催化活性作用,能实现对3种物质的同时测定。UA、XA和HX在该修饰电极上的线性范围分别为9.0~739.0、2.0~259.0、1.0~353.0μmol/L;检出限分别为0.67、0.17、0.33μmol/L。该修饰电极已成功用于尿液和血清实际样品中UA、XA和HX的同时测定,回收率为98.8%~105.5%。  相似文献   

11.
《Electroanalysis》2018,30(9):2044-2052
Acid functionalized multi‐walled carbon nanotubes (f‐MWCNTs) were decorated with Au and Fe2O3 nanoparticles (FeONPs) and deposited on glassy carbon electrode (GCE). The resulting hybrid Au/Fe2O3/f‐MWCNTs/GCE electrode and the one further modified by glucose oxidase were compared for detection of glucose. FeONPs and Au were deposited on the f‐MWCNTs by sonication‐assisted precipitation and deposition‐precipitation methods, respectively. The morphology and structure of the samples were characterized by transmission electron microscopy, scanning electron microscopy, X‐ray diffraction and Raman spectroscopy. A uniform distribution of FeONPs with an average size of 5 nm increased the surface area of functionalized nanotubes from 39 to 50 m2/g. The electrocatalytic glucose detection on the modified electrodes was evaluated using cyclic voltammetry and chronoamperometry in 0.1 M phosphate buffer solution at pH 7.0. The non‐enzymatic and enzymatic electrodes show sensitivity of 512.4 and 921.4 mA/mM.cm2 and detection limit of 1.7 and 0.9 mM, respectively. The enzymatic and enzymeless electrodes retained more than 70 % and 80 % of their cathodic faradic current after 70 days, respectively. The sensing mechanism of the non‐enzymatic biosensor is described through the reaction of glucose with iron (III) ions, while in the case of enzymatic electrode, glucose is oxidized by glucose oxidase.  相似文献   

12.
In this work, a glassy carbon electrode (GCE) was modified with multiwall carbon nanotubes/ionic liquid/graphene quantum dots (MWCNTs/IL/GQDs) nanocomposite. Then, the nanocomposite was decorated with nickel‐cobalt nanoparticles (Ni?Co NPs), and it was used as a non‐enzymatic glucose sensor. Field emission scanning electron microscopy, X‐ray diffraction spectroscopy, and energy dispersive spectroscopy were employed to prove the electrodeposition of the Ni?Co NPs on the surface of MWCNTs/IL/GQDs/GCE. Also, cyclic voltammetric and amperometric methods were utilized for the investigation of the electrochemical behaviour of the Ni?Co NPs/MWCNTs/IL/GQDs/GCE for glucose oxidation. The novel amperometric sensor displayed two linear ranges from 1.0 to 190.0 μmol L?1 and 190.0 to 4910 μmol L?1 with a low detection limit of 0.3 μmol L?1 as well as fast response time (2 s) and high stability. Also, the sensor showed good selectivity for glucose determination in the presence of ascorbic acid, citric acid, dopamine, uric acid, fructose, and sucrose, as potential interference species. Finally, the performance of the proposed sensor was investigated for the glucose determination in real samples. Ni?Co NPs/MWCNTs/IL/GQDs/GCE showed good sensitivity and excellent selectivity.  相似文献   

13.
A selective and simple biosensor was prepared by immobilizing chitosan/nickelnanoparticles/multi-walled carbon nanotubes biocomposite on the glassy carbon electrode surface for voltammetric quantification of neotame. The properties and morphology of the modified electrode surfaces were characterized by scanning electron microscope (SEM), energy dispersive X-ray analysis (EDX). Electro oxidation of neotame on this modified surface was examined through cyclic voltammetry (CV) and square wave voltammetry (SWV) techniques. The biocomposite modified surface (Chi/NiNPs/MWCNTs/GCE) proposed in this study showed good electrocatalytic activity for neotame with an improved voltammetric peak current at 1.004 V, unlike the bare glassy carbon electrode (GCE) surface and several other modified surfaces. Under optimum conditions, Chi/NiNPs/MWCNTs/GCE gave linear SWV responses at the range of 2 μM ∼50 μM for neotame with 0.84 μM determination limit. This voltammetric sensor was successfully employed for the quantification of neotame on food samples and showed long-term stability, advanced voltammetric behavior, and good repeatability. Selective, accurate, and precise determination of neotame highlight the importance of this electrode in monitoring the control of food additives and ensures attract a great deal of attention.  相似文献   

14.
研究了15种不同取代基苯酚衍生物在纳米金/玻碳 (Au/GCE) 电极上的电化学响应. 测试表明:该电极对15种苯酚衍生物的电化学反应各呈现出不同程度的电催化作用;与GCE和平面金电极相比,苯酚衍生物的氧化峰电流均有所增加,氧化电位受待测物反应活性影响较大;水杨酸在Au/GCE电极上响应迅速,电流灵敏度是GCE电极的1.8倍;该电极可用于多种苯酚衍生物的痕量测定.  相似文献   

15.
A sensitive nitrite (NO2) biosensor was fabricated by using sodium dodecyl sulfate (SDS), Au nanorods, and thionine functionalized MWCNTs (TH‐f‐MWCNTs) nanohybrids modified glassy carbon electrode. TH was covalently immobilized on the MWCNTs via a carbodiimide reaction. Comparing with MWCNTs/GCE, TH‐f‐MWCNTs/GCE displays higher catalytic activity toward the oxidation of NO2, since TH not only promoted the electronic transmission but also could improve the concentration of NO2 at the surface of the modified electrode in acidic solutions. The Au nanorods (AuNRs) were prepared through a simple wet chemical method and were characterized by TEM. The extremely high surface‐to‐volume ratios associated with one dimension nanostructures make their electrical properties extremely sensitive to species adsorbed on surfaces and result in excellent sensitivity and selectivity. SDS displays excellent film forming ability, which made the electrode stable. Under optimal conditions, the linear range for the detection of nitrite was 0.26 to 51 μM, and the low detection limit was 20 nM. In addition, the modified electrode was successfully applied to determine nitrite in real water samples. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

16.
Direct‐methanol fuel cells are proton‐exchange fuel cell in which methanol is used as the fuel. The important advantage of these fuel cells is the simplicity of transport and storage of methanol. In this study, methanol fuel cell electrocatalysts including graphene quantum dots (GQDs), functionalized multi‐walled carbon nanotubes (f‐MWCNTs) and GQDs/f‐MWCNTs composite were synthesized. The structures of synthesized electrocatalysts were highlighted by scanning electron microscope (SEM), raman spectroscopy, UV–vis spectroscopy, fourier transform infrared spectroscopy (FTIR), electrochemical impedance spectroscopy (EIS) and x‐ray diffraction (XRD) method. After that, the effective surface areas (ESA) of GQDs, f‐MWCNTs and GQDs/f‐MWCNTs were calculated. Finally, GQDs/f‐MWCNTs composite modified glassy carbon electrode (GQDs/f‐MWCNTs/GCE) showed highest current signals for methanol oxidation than those of comparable GQDs/GCE and f‐MWCNTs/GCE.  相似文献   

17.
An electrochemical sensor was prepared using Au nanoparticles and reduced graphene successfully decorated on the glassy carbon electrode (Au/RGO/GCE) through an electrochemical method which was applied to detect Sunset Yellow (SY). The as-prepared electrode was characterized by scanning electron microscopy (SEM), transmission electron microscopy (TEM), atomic force microscopy (AFM) and electrochemical measurements. The results of cyclic voltammetry (CV) proved that Au/RGO/GCE had the highest catalytic activity for the oxidation of SY as compared with GCE, Au/GCE, and RGO/GCE. Differential pulse voltammetry (DPV) showed that the linear calibration curves for SY on Au/RGO/GCE in the range of 0.002 μM–109.14 μM, and the detection limit was estimated to be 2 nM (S/N = 3). These results suggested that the obtained Au/RGO/GCE was applied to detect SY with high sensitivity, low detection limit and good stability, which provided a promising future for the development of portable sensor in food additives.  相似文献   

18.
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   

19.
A new amperometric biosensor based on adsorption of glucose oxidase (GOx) at the CuGeO3 nanowires (NW) modified glassy carbon electrode (GCE) is reported in this article. The properties of the biosensor were characterized by Fourier transform infrared spectroscopy (FTIR), electrochemical impedance spectroscopy (EIS) and electrochemical techniques. The GCE modified with the CuGeO3 NW/GOD showed excellent electrocatalytical response to the oxidation of glucose. Different parameters including GOx concentration, working potential and pH of supporting electrolyte that governed the analytical performance of the biosensor have been studied in detail and optimized. The biosensor was applied to detect glucose with a linear range of 0.5 to 7 mM. The biosensor exhibited excellent reproducibility and stability.  相似文献   

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