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1.
利用磷酸盐缓冲溶液中吡咯的电聚合,将葡萄糖氧化酶(GOD)包埋在聚吡咯(PPy)基质中以构成生物功能电极。讨论了溶液pH和聚合电位对酶固定化的影响,并用IR和交流阻抗谱对酶膜进行表征。GOD的固定化只有当pH>5.5时才能实现,由此推测酶是以带负电的粒子嵌入PPy的。交流阻抗谱表明这一电极具有有界多孔电极的特征。探索了酶与电子传递体Fe(CN)_6~(3-)同时固定化的可行性。电化学固定化的GOD保持其生物催化活性,酶反应表观上遵循Michealis-Menten动力学。  相似文献   

2.
纳米级微带金电极上葡萄糖氧化酶的固定.性质及应用   总被引:5,自引:0,他引:5  
实现了葡萄糖氧化酶以及葡萄糖氧化酶和电子传递媒体Fe(CN)^3^-~6同时在纳米级微带电极上的固定,用红外光谱和循环伏安对GOD/PPy微电极进行了表征, 研究了微带金电极上聚吡咯恒电位形成过程的动力学及葡萄糖氧化酶对其动力学过程的影响,探讨了微酶电极GOD/Fe(CN)^3^-~6/PPy对葡萄糖氧化的催化作用, 考察了PPy膜厚度和溶液中氧的存在对GOD/Fe(CN)^3^-~6/PPy微电极测定葡萄糖的影响.  相似文献   

3.
聚吡咯为基底的葡萄糖酶微电极的研究   总被引:1,自引:0,他引:1  
郭黎平  李星全 《分析化学》1992,20(7):828-830
本文将聚吡咯(PPy)修饰的铂微电极以牛血清白蛋白(BSA)为载体,用戊二醛与萄葡糖氧化酶(GOD)交联,制成了萄葡糖酶微电极(GOD/PPy/Pt)。电极的寿命可达21天。萄葡糖浓度在1.0×10~(-4)~3.0×10~(-3)mol/L范围内有线性关系。  相似文献   

4.
制备了一种新颖的可对槲皮素分子进行选择性测定的分子印迹聚合物膜修饰电极.在碳纳米管(CNT)独特的结构和力学性能作用下,以吡咯(Py)为功能单体,槲皮素为模板分子,电聚合方法制备了槲皮素的分子印迹聚合物膜修饰电极(PPy/CNT/GCEMIP).用电化学交流阻抗法研究了该修饰电极的界面性质,用循环伏安法和差分脉冲伏安法...  相似文献   

5.
在Pt微盘电极上用恒电流技术在电流密度为0.05-10 mA·cm-2范围合成了1 滋m厚度的聚吡咯(PPy)膜. 采用循环伏安(CV)、计时电势、交流阻抗(EIS)技术考察了不同聚合电流下得到的聚吡咯的电化学行为. 结果表明, 最佳聚合电流区间为1-5 mA·cm-2, 对应的电势一般在3.9-4.1V (vs Li/Li+)之间, PPy的掺杂度为30%左右. 在这一聚合电流密度范围得到的PPy具有较大的电化学容量, 较佳的电化学反应可逆性能、较高的氧化还原电势数值和稳定性能. 处于氧化态的聚吡咯具有优良的导电性. 上述条件下得到的PPy适合于作为锂离子二次电池的正极材料. 适当选择电流, 可以得到有相对完整的共轭仔键的长链结构的PPy 膜.  相似文献   

6.
聚吡咯/聚苯胺复合型导电聚合物防腐蚀性能   总被引:1,自引:0,他引:1  
薛守庆 《应用化学》2013,30(2):203-207
采用循环伏安法,在含吡咯和苯胺的0.3 mol/L草酸水溶液中制备了聚吡咯/聚苯胺(PPy/Pani)的复合型导电聚合膜。采用红外光谱、极化曲线、自腐蚀电位-时间曲线、扫描电子显微镜和电化学阻抗谱研究了共聚膜的防腐蚀性能。结果表明,在1 mol/L H2SO4中,PPy、Pani与不锈钢基体发生氧化还原反应,促进不锈钢表面发生钝化;当苯胺与吡咯浓度比为1∶3时,制备得到的复合型导电聚合膜所保护的不锈钢自腐蚀电流最小,自腐蚀电位最高,保护时间最长。PPy、Pani及其共聚膜在3.5%NaCl溶液中电化学阻抗谱表明,所制备的PPy、Pani及其共聚物膜与不锈钢基体发生氧化还原反应,使其表面钝化;当Cl-到达不锈钢表面时,破坏钝化膜导致不锈钢腐蚀。  相似文献   

7.
以1-丁基-3-甲基咪唑六氟磷酸盐离子液体作为溶剂和支持电解质,分别在铂电极和导电玻璃电极上电化学聚合得到了聚吡咯,聚合过程中发现,在离子液体中聚合的循环伏安图,其电流的变化和传统有机溶剂中的不同,通过交流阻抗技术研究了修饰电极的电化学性质,采用在线紫外、拉曼、红外谱对聚吡咯进行了光谱表征,得到了聚吡咯的特征峰,采用扫描电镜研究了聚合物的形貌。最后将修饰电极应用到了对对苯二酚的催化反应当中,显示了一定的催化作用。  相似文献   

8.
多次聚合法制备多孔聚吡咯厚膜及其电化学容量性能   总被引:1,自引:0,他引:1  
为了得到高面积比容量的聚吡咯(PPy)膜超级电容器电极材料, 用多次聚合法合成了PPy厚膜, 聚合电量分别为8、10和12 mAh·cm-2, 掺杂离子分别为氯离子和对甲基苯磺酸根离子(TOS-). PPy膜的电化学性能采用恒电流充放电、循环伏安(CV)和电化学阻抗谱(EIS)等方法测试. 研究表明, 多次聚合法可以制备表面平整且内部均匀多孔的PPy厚膜. 在聚合电量为12 mAh·cm-2时, 用Cl-、TOS-两种离子掺杂的PPy厚膜的面积比容量高达5 F·cm-2, 并表现出理想的电化学容量性能. 同时PPy-Cl厚膜的质量比容量达到330 F·g-1, PPy-TOS厚膜的质量比容量略低(191 F·g-1), 但具有更快的充放电速率. 与一次聚合法合成的PPy 薄膜相比, 多次聚合法合成的PPy厚膜的质量比容量没有降低. 通过场发射扫描电镜(SEM)观察了一次聚合法和多次聚合法制备的PPy厚膜的截面形貌, 并讨论了多次聚合法的合成机理.  相似文献   

9.
锌是人体不可缺少的微量元素,锌的摄入量会影响人的身体健康。因此对食物、药品及环境水样中Zn~(2+)含量的准确检测十分必要。本研究将包含ZnCl_2溶液的聚吡咯微胶囊涂敷于玻碳电极与Zn~(2+)选择膜之间,作为固接传感层,制得以聚吡咯微胶囊为中间层的全固态Zn~(2+)选择性膜电极(GC/PPy微胶囊/Zn~(2+)-ISE),以循环伏安法、交流阻抗谱等对电极性能进行了研究。结果表明,聚吡咯微胶囊作为固接传感层,可以明显地提高电极的电容,降低电极的电荷转移阻抗,使电极能有效进行离子电子之间信号的转换。电极的线性响应范围为1×10~(-5)~1.0×10~(-1)mol/L,检出限为2.45×10~(-6)mol/L。以聚吡咯为中间层的电极具有良好的再现性和稳定性。  相似文献   

10.
用恒电流法分别聚合了掺杂对甲苯磺酸根(pTS-)和十二烷基磺酸根(DS-)的聚吡咯膜(PPy/pTS和PPy/DS),通过循环伏安法(CV)和电化学阻抗法(EIS)测试了聚吡咯膜在NaCl溶液中‘过电位’电化学过程前后及不同电位下聚吡咯膜的电化学性能.同时,通过嵌入和脱出Na+和Cl-离子的聚吡咯膜在特定溶液中电化学阻抗图谱,研究了离子的嵌入对聚吡咯膜电化学性能的影响.结果表明‘过电位’现象可以提高聚吡咯膜的离子电导率和膜电容,Cl-离子的嵌入能提高PPy/pTS的电导率,而Na+离子的嵌入对聚吡咯膜的电导率影响不大.另外,嵌入离子对聚吡咯膜形貌的改变会对聚吡咯膜的离子传导率有一定影响,从而导致膜的电化学阻抗的变化.  相似文献   

11.
Electrogenerated PPy doped with pSA was used as a substrate for immobilization of GOD. This was achieved via covalent bonding of carboxyl groups of the main chain of alginate with amino groups of the enzyme. The pH-induced aggregation behavior of SA in aqueous solution was employed to provide optimum conditions for electrochemical preparation of PPy by galvanostatic methods. GOD was attached to the electrode surface by reaction between the carboxyl groups in the main chain of pSA with amino groups of GOD after treatment with EDC and NHS. The linkage of GOD enzyme to the conductive surface was characterized by ATR spectroscopy and SEM CV was used to demonstrate the bioactivity of the enzyme electrode toward glucose.  相似文献   

12.
纳米级金膜微电极的制作,表征及异相催化反应   总被引:1,自引:0,他引:1  
报道了纳米级金膜微电极的制作方法,用XPS及SEM对电极表面进行了表征,考察了该电极的循环伏安及计时电流特性,在聚吡咯修饰微带金电极上成功地实现了葡萄糖氧化酶和电子传递媒体Fe(CN)6^3-的同时固定,并研究了GOD/Fe(CN)6^3-/PPy微酶电极对葡萄糖的响应,稳态响应电流与葡萄糖浓度之间存在Michealis-Menten动力学特征。  相似文献   

13.
A new concept is described for monitoring a biomolecule with a sensor having an enzyme entrapped in a conducting polymer. This is based on the sensitivity of the electroactive polymer itself to changes of pH in solution. The concept has been investigated for a glucose sensor with glucose oxidase (GOD) immobilized in a polypyrrole (PPy) layer on an inert platinum electrode. Measurements with a Pt/PPy/GOD electrode for glucose concentrations in the physiological range gave a linear correlation with logarithm of concentration over one decade with a satisfactory dynamic response. There was practically no change of slope or range of linear response to glucose after several days of use; this was in contrast to the amperometric response of the detector when there was about a 50% loss of sensitivity.  相似文献   

14.
IntroductionDirectelectrochemistryofenzymeshasarousedincreasinginterestofmanyresearchersasitisapreferablewayforproducingarealreagent1essbiosensor.Glucoseoxidase(GOD),beingaflavoprotein,iswell-knownduetoitswidespreaduseinthebiosensors'Recently,agreatnumberofpeoplehaveat-temptedtoachievedirectelectrontransferbetweenGODandvariouselec-trodes[l-19].Szucselal.determinedtheshapeandsizeoftheGODmoleculead-sorbedonagoldelectrodebyel1ipsometry['jandexamineddirectelectrontrans-ferbetweentheadsorbedenz…  相似文献   

15.
Nickel oxide nanoparticle (NiO?NP) and polypyrrole (PPy) composite were deposited on a Pt electrode for fabrication of a urea biosensor. To develop the sensor, a thin film of PPy?NiO composite was deposited on a Pt substrate that serves as a matrix for the immobilization of enzyme. Urease was immobilized on the surface of Pt/PPy?NiO by a physical adsorption. The response of the fabricated electrode (Pt/PPy?NiO/Urs) towards urea was analyzed by chronoamperometry and cyclic voltammetry (CV) techniques. Electrochemical response of the bio‐electrode was significantly enhanced. This is due to electron transfer between Ni2+ and Ni3+ as the electro‐catalytic group and the reaction between polypyrrole and the urease‐liberated ammonium. The fabricated electrode showed reliable and demonstrated perfectly linear response (0.7–26.7 mM of urea concentration, R2= 0.993), with high sensitivity (0.153 mA mM?1 cm?2), low detection of limit (1.6 μM), long stability (10 weeks), and low response time (~5 s). The developed biosensor was highly selective and obtained data were repeatable and reproduced using PPy‐NiO composite loaded with immobilized urease as urea biosensors.  相似文献   

16.
Sulfhydryl groups of glucose oxidase (GOD) were reacted with maleimide groups of polymaleimidostyrene (PMS) which was coated onto the porous carbon sheet, and the carbon sheet immobilized by GOD was combined with an oxygen electrode to fabricate a glucose sensor. The activity of thiolated GOD immobilized to PMS is much larger than that of native GOD immobilized to PMS. The good linear relationship of glucose and oxygen current response was obtained in a concentration range from 0.1 to 2 mM and upper limit of linear range was found to be 3.0 mM. The immobilized GOD activity is highly dependent on pH at immobilization and the maximum activity was obtained at pH 5.5, probably because the SH groups of GOD that are indispensable for generation of enzyme activity is not exposed at this pH. It was found that PMS is very effective reagent to immobilize enzyme strongly via covalent bond, because high density of maleimide groups of PMS can catch not only exposed SH groups but also buried SH groups.  相似文献   

17.
《Electroanalysis》2003,15(3):183-190
The important parameters in defining the response of the portable channel biosensor described previously are explored by connecting the portable flow cell to a gravity feed flow system and using a highly defined enzyme immobilization protocol which ensures the enzyme reaction is a surface reaction. The enzyme glucose oxidase (GOD) was immobilized by covalent attachment to a self‐assembled monolayer modified gold surface. As a glucose solution flowed down the rectangular duct defined by the flow cell, it passed over the enzyme layer where the enzyme reaction produced hydrogen peroxide. The hydrogen peroxide was swept further downstream to the detector electrode. The response of such an enzyme electrode was shown to be limited by mass transport of the cosubstrate oxygen to the enzyme layer. Increasing the amount of oxygen in the sample meant the response of the biosensor became limited by the enzyme kinetics. The influence of parameters such as flow rate, height of the channel, enzyme layer length and the gap between the enzyme layer and the detector electrode were explored.  相似文献   

18.
用亲水金、憎水二氧化硅纳米颗粒固定葡萄糖氧化酶 (GOD) ,采用聚乙烯醇缩丁醛 (PVB)为辅助固酶膜基质来制备葡萄糖生物传感器 ,并考察了亲水金、憎水二氧化硅纳米颗粒对酶电极电流响应的影响 .实验表明 ,引入纳米粒子可显著增强电极响应灵敏度 .并对两种不同性质纳米颗粒所起作用的可能机理进行讨论 ,从理论和实验上证明了纳米颗粒对固定酶的作用 .为制备有实用价值的葡萄糖生物传感器提供了可供参考的实验和理论依据 .  相似文献   

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