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1.
铁氧化还原蛋白在多壁碳纳米管上的固定、表征及直接电子转移 总被引:4,自引:0,他引:4
将来源于Spinacia Oleracea的铁氧化还原蛋白(ferredoxin, SOFd)固定在多壁碳纳米管(CNT)表面, 紫外-可见及红外光谱表明, SOFd在CNT表面没有变性, 仍保持原来的二级空间结构. 循环伏安结果表明, SOFd在CNT表面能进行有效和稳定的直接电子转移反应, 伏安曲线上出现一对良好的、几乎对称的氧化还原峰, 式量电位E0'为(-570.4±1.5) mV (vs. SCE, 0.1 mol/L磷酸盐缓冲液), 且不随扫速和溶液pH值的变化而变化. SOFd直接电子转移的表观速率常数ks为(0.73±0.04) s-1. 相似文献
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The direct electrochemistry of glucose oxidase (GOD) was achieved based on the immobilization of GOD on a natural nano‐structural attapulgite (ATP) clay film modified glassy carbon (GC) electrode. The immobilized GOD displayed a pair of well‐defined quasi‐reversible redox peaks with a formal potential (E0′) of ?457.5 mV (vs. SCE) in 0.1 mol·L?1 pH 7.0 phosphate buffer solution. The peak current was linearly dependent on the scan rate, indicating that the direct electrochemistry of GOD in that case was a surface‐controlled process. The immobilized glucose oxidase could retain bioactivity and catalyze the oxidation of glucose in the presence of ferrocene monocarboxylic acid (FMCA) as a mediator with the apparent Michaelis‐Menten constant Kappm of 1.16 mmol·L?1. The electrocatalytic response showed a linear dependence on the glucose concentration ranging widely from 5.0×10?6 to 6.0×10?4 mol·L?1 (with correlation coefficient of 0.9960). This work demonstrated that the nano‐structural attapulgite clay was a good candidate material for the direct electrochemistry of the redox‐active enzyme and the construction of the related enzyme biosensors. The proposed biosensors were applied to determine the glucose in blood and urine samples with satisfactory results. 相似文献
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Immobilization and Characterization of Glucose Oxidase on Single-Walled Carbon Nanotubes and Its Application to Sensing Glucose 总被引:3,自引:0,他引:3
The negatively charged (at pH 8.2) glucose oxidase (GOx, pI ca. 4.2) was assembled onto the surface of single-walled carbon nanotubes (SWNT), which was covered (or wrapped) by a layer of positively charged polyelectrolyte poly(dimethyldiallylammonium chloride) (PDDA), via the electrostatic interaction forming GOx-PDDASWNT nanocomposites. Fourier transform infrared (FTIR), UV-Vis and electrochemical impedance spectroscopy (EIS) were used to characterize the growth processes of the nanocomposites. The results indicated that GOx retained its native secondary conformational structure after it was immobilized on the surface of PDDA-SWNT. A biosensor (Nafion-GOx-PDDA-SWNT/GC) was developed by immobilization of GOx-PDDA-SWNT nanocomposites on the surface of glassy carbon (GC) electrode using Nafion (5%) as a binder. The biosensor showed the electrocatalytic activity toward the oxidation of glucose under the presence of ferrocene monocarboxylic acid (FcM) as an electroactive mediator with a good stability, reproducibility and higher biological affinity. Under an optimal condition, the biosensor could be used to detection of glucose, presenting a typical characteristic of Michaelis-Menten kinetics with the apparent Michaelis-Menten constant of KM^app ca. 4.5 mmol/L, with a linear range of the concentration of glucose from 0.5 to 5.5 mmol/L (with correlation coefficient of 0.999) and the detection limit of ca. 83 μmol/L (at a signal-to-noise ratio of 3). Thus the biosensor was useful in sensing the glucose concentration in serum since the normal glucose concentration in blood serum was around 4.6 mmol/L. The facile procedure of immobilizing GOx used in present work would promote the developments of electrochemical research for enzymes (proteins), biosensors, biofuel cells and other bioelectrochemical devices. 相似文献
4.
葡萄糖氧化酶在活性炭上的固定及直接电化学 总被引:2,自引:0,他引:2
The glucose oxidase (GOD) immobilized onto the surface of activated carbon powders at the glassy carbon electrode (GOD-C/GC) could undergo the quasi-reversible, direct electrochemical reaction. Its formal redox potential, E0′, is almost independent on the scan rates. The average value of E0′ is (-0.467 ± 0.002) V (vs SCE) in the pH 6.8 phosphate buffer solution. Its apparent heterogeneous electron transfer rate constant (ks) is (1.18 ± 0.59) s-1, which is much higher than that reported previously. The dependence of E0′ on the pH of the buffer solution indicated that the direct electrochemical reaction of the immobilized GOD is a two-electron transfer reaction process coupled with two-proton transfer. The further experimental results demonstrated that the immobilized GOD retained its bioelectrocatalytic activity to the oxidation of β-D(+) glucose. 相似文献
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Electron transfer (ET) reactions in bioelectrocatalysis of enzymes at electrode surfaces require not only the efficient immobilization, but also highly conductive nanostructured platform, which allows for retaining its bioactivity and structural conformation. The novel architecture of spatially separated electrochemically reduced graphene oxide (ERGO) by multi‐walled carbon nanotubes functionalized with 4‐(pyrrole‐1‐yl) benzoic acid (MWCNT/PyBA) with the accurate porous structure could be an alternative for earlier approaches to the construction of bioelectrocatalytic systems with rapid diffusion of reagents from the solution to the enzyme molecule. The formation of ERGO/MWCNT/PyBA system was confirmed by electrochemical, spectroscopic and microscopic methods. The cyclic voltammetry experiments revealed that the presence of ERGO in the conductive material affects the electronic communication between the enzyme molecule and modified electrode surface greatly improving its ET properties resulting in a double increase of the heterogeneous ET rate constant value (ks=6.5 s?1). The fabricated glucose oxidase based biosensor sensitively detects glucose, therefore, ERGO/MWCNT/PyBA architecture could provide a novel and efficient platform for immobilization of redox enzymes. 相似文献
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基于多壁碳纳米管和聚丙烯胺层层自组装的葡萄糖生物传感器 总被引:1,自引:0,他引:1
经混酸处理后的多壁碳纳米管(MWCNTs)末端及侧壁带有含氧基团,能与阳离子聚电解质通过静电作用结合,也能与酶蛋白非特异性结合。利用层层自组装法在铂(Pt)电极表面构建了聚丙烯胺(PAA)-MWC-NTs-葡萄糖氧化酶(GOx)膜,研究了自组装薄膜的表面微观形貌和电化学性质。组装层数为6层时最优,对葡萄糖响应线性范围为5.0×10-4~2.10×10-2mol/L;检出限为1.0×10-4mol/L(S/N=3);灵敏度为4.95μA/(mmolcm2),响应时间3.80s;GOx表观米氏常数为17.79mmol。对抗坏血酸等具有较强的抗干扰能力,10天后电极响应电流保持最初的91.79%。3次平行实验的RSD为4.85%。 相似文献
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聚噻吩/多壁碳纳米管复合材料的导电性能 总被引:1,自引:0,他引:1
通过共混多壁碳纳米管(MWNTs)和聚噻吩(PTh), 制备了PTh/MWNTs复合材料, 复合材料表现出良好的导电性能(电导率达16.1 S/m). 通过Raman, TG, XPS, UV-Vis等对复合材料进行了分析, 结果表明, MWNTs和 PTh之间存在强的相互作用, MWNTs上的离域电子与噻吩共轭主链上的π电子之间形成π-π共轭, 电子从MWNTs转移到聚噻吩, 增加了噻吩主链的有效共轭长度, 提高了复合材料的导电性能. FESEM分析表明, MWNTs和它周围被掺杂的聚噻吩通过π-π共轭作用结合在一起, 形成相对独立的导电单元, 在复合材料的导电体系中起到主要作用. 相似文献
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基于碳纳米管和铁氰酸镍纳米颗粒协同作用的葡萄糖生物传感器 总被引:8,自引:1,他引:8
将制备的铁氰酸镍纳米颗粒(NiNP)与多壁碳纳米管(CNT)混合, 分散于壳聚糖溶液中, 形成一种新的纳米复合成分(NiNP-CNT-CHIT), 将其修饰在玻碳电极表面. 新复合膜体现了NiNP和CNT之间的协同作用, 由于CNT的良好的传递电子性能, 促使NiNP催化氧化还原能力有了较大的提高. 此NiNP-CNT-CHIT复合膜修饰的玻碳电极在较低电位下对过氧化氢具有良好的电催化性能, 与NiNP-CHIT膜比较, 测定H2O2的灵敏度增大了50倍. 通过戊二醛在电极表面固定葡萄糖氧化酶制备了一种新的葡萄糖传感器. 该传感器在-0.2 V下对葡萄糖的线性范围为0.05~10 mmol/L, 检测下限为10 μmol/L. 相似文献
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基于多壁碳纳米管和氧化锌纳米棒复合物的葡萄糖生物传感器(英文) 总被引:1,自引:0,他引:1
利用多壁碳纳米管(MWCNTs)和氧化锌(ZnO)纳米棒复合物膜构建了一种新的电流型葡萄糖生物传感器。MWCNTs-ZnO复合物在超声协助下通过静电配位的方式产生。其中,ZnO纳米棒的存在加强了该复合物催化氧化H2O2的能力,增加了响应电流。与单一的MWCNTs和ZnO相比,这种纳米复合物显示了更为有效地电催化活性。在此基础上,我们以MWCNTs-ZnO复合物膜为基底,用戊二醛交联法固定葡萄糖氧化酶,电聚合邻苯二胺(PoPD)膜为抗干扰层,构建了抗干扰能力强,稳定性好,灵敏度高,响应快的葡萄糖传感器。在+0.8V的检测电位下,该传感器对葡萄糖响应的线性范围为5.0×10-6~5.0×10-3mol·L-1(R=0.997),检测限为3.5×10-6mol·L-1(S/N=3),响应时间小于10s的葡萄糖生物传感器,常见干扰物质如抗坏血酸和尿酸不影响测定。 相似文献
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基于辣根过氧化物酶/纳米金/辣根过氧化物酶/多壁纳米碳管修饰的过氧化氢生物传感器的研究 总被引:16,自引:1,他引:16
以固定在玻碳电极上的多壁纳米碳管为基底吸附辣根过氧化物酶, 再固定纳米金, 然后再结合一层辣根过氧化物酶, 利用多壁纳米碳管对辣根过氧化物酶的直接电化学催化特性及纳米金对蛋白质的强吸附能力及强的电子传导特性制备了无电子媒介体的过氧化氢生物传感器. 采用循环伏安法, 在无电子媒介体时, 该传感器对H2O2 仍能具有良好的催化活性, 放大了电信号, 提高了该酶传感器的灵敏度及稳定性. 实验证明, 该传感器在H2O2浓度为 1.0×10-6~ 1.0×10-3 mol8226;L-1范围内有线性响应, 线性相关系数r2=0.9964. 并探讨了电极的稳定性、寿命及重现性. 相似文献
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Jiangwen Li Faqiong Zhao Guangyin Wang Zhe Gui Fei Xiao Baizhao Zeng 《Electroanalysis》2009,21(2):150-156
A novel composite was fabricated through dispersing multiwalled carbon nanotubes (MWNTs) in gold nanoparticle (GPs) colloid stabilized by chitosan and ionic liquid (i.e., 1‐butyl‐3‐methylimidazolium tetrafluoroborate, BMIMBF4). Transmission electron microscopy (TEM) experiment showed that the GPs highly dispersed on the MWNTs probably due to the electrostatic interaction among GPs, MWNTs and the imidazolium cation of BMIMBF4. X‐ray photoelectron spectroscopy (XPS) indicated that thus‐formed gold nanostructure was mediated by BMIMBF4. When glucose oxidase (GOD) was immobilized on the composite (MWNTs‐GPs) its ultraviolet‐visible absorption spectrum kept almost unchanged. The immobilized GOD coated glassy carbon electrode (GOD/MWNTs‐GPs/GC) exhibited a pair of well‐defined peaks in 0.10 M pH 7.0 phosphate buffer solution (PBS), with a formal potential of ?0.463 V (vs. SCE). The electrochemical process involved two‐electron transfer. The electron transfer coefficient was ca.0.56 and the electron transfer rate constant was 9.36 s?1. Furthermore, the immobilized GOD presented good catalytic activity to the oxidation of glucose in air‐saturated PBS. The Km and Im values were estimated to be 13.7 μM and 0.619 μA. The GOD/MWNTs‐GPs/GC electrode displayed good stability and reproducibility. 相似文献
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《Analytical letters》2012,45(11):2039-2053
Abstract Biphenol (4,4′-dihydroxy-biphenyl) was found to be an electron transfer mediator for glucose oxidase (GOD) of Aspergillus niger. At a glassy carbon electrode, a 1.44×10-4 M solution of biphenol in phosphate-buffered saline (PBS) at pH 7.4 gives an quasi-reversible, one-electron, pH-sensitive couple at 255mV (relative to the standard calomel electrode). The apparent second-order rate constant for electron transfer from reduced GOD to oxidized biphenol was determined to be 3×105 M-1 s-1. When biphenol and GOD are cophysiadsorbed on a graphite electrode immersed in PBS and held at 400mV, a glucose-dependent current response is noted. In addition to the predominant quasi-reversible biphenol redox couple, repetitive cyclic voltammetry at a graphite electrode gave rise to a polybiphenol polymer; this is most marked at a pH above the biphenol pKa of about 9.5. At pH 7.4, the polymerization is less significant. Polybiphenol formed either side of the pKa remains electrochemically active (E°app. = 245mV) but no longer mediates GOD. 相似文献
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采用不同结构的高分子聚合物与纯化的多壁碳纳米管(MWCNTs)共混的方法,制备得到聚合物非共价功能化多壁碳管复合物,测定了这些载体对漆酶(lac)的担载量、固定漆酶的比活力及稳定性.以固定漆酶的复合物修饰玻碳(GC)电极后,采用循环伏安法研究这些电极在无氧磷酸盐缓冲液(PBS)中的直接电化学行为及催化氧还原活力,粗略地测定了固定漆酶与电极间电子转移的速率常数.实验结果表明,当聚合物中含亲漆酶基团或能与漆酶活性中心发生相互作用的官能团时利于直接电子转移,而且复合物固定漆酶保持了游离漆酶的天然构象.这些电极中,lac/NIPAM-co-BPCP-M WCNTs/GC(NIPAM-co-BPCP:N-烯丙基-1-苯甲酰基-3-苯基-4,5-2H-4-甲酰胺基吡唑-co-N-异丙基丙烯酰胺)在无氧PBS中发生直接电子转移的式电位(605mV)更接近漆酶活性中心的式电位(580mV),具有较快的异相电子转移速率(0.726s-1),较高的漆酶担载量(103.5mg/g)和固定漆酶比活力(1.68U/mg),较高的催化氧还原能力(氧还原起始电位820mV,在650mV时的催化峰电流为85.5μA)以及良好的重复使用性和长期使用性. 相似文献
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Glucose oxidase (GOD) was encapsulated in chitosan matrix and immobilized on a glassy carbon electrode, achieving direct electron transfer (DET) reaction between GOD and electrode without any nano‐material. On basis of such DET, a novel glucose biosensor was fabricated for direct bioelectrochemical sensing without any electron‐mediator. GOD incorporated in chitosan films gave a pair of stable, well‐defined, and quasireversible cyclic voltammetric peaks at about ?0.284 (Epa) and ?0.338 V (Epc) vs. Ag/AgCl electrode in phosphate buffers. And the peak is located at the potentials characteristic of FAD redox couples of the proteins. The electrochemical parameters, such as midpoint potential (E1/2) and apparent heterogeneous electron‐transfer rate constants (ks) were estimated to ?0.311 V and 1.79 s?1 by voltammetry, respectively. Experimental results indicate that the encapsulated GOD retains its catalytic activity for the oxidation of glucose. Such a GOD encapsulated chitosan based biosensor revealed a relatively rapid response time of less than 2 min, and a sufficient linear detection range for glucose concentration, from 0.60 to 2.80 mmol L?1 with a detection limit of 0.10 mmol L?1 and electrode sensitivity of 0.233 μA mmol?1. The relative standard deviation (RSD) is under 3.2% (n=7) for the determination of practical serum samples. The biologic compounds probably existed in the sample, such as ascorbic acid, uric acid, dopamine, and epinephrine, do not affect the determination of glucose. The proposed method is satisfactory to the determination of human serum samples compared with the routine hexokinase method. Both the unique electrical property and biocompatibility of chitosan enable the construction of a good bio‐sensing platform for achieved DET of GOD and developed the third‐generation glucose biosensors. 相似文献
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The electrochemical activation of multiwalled carbon nanotubes (MWCNTs) (at potentials of 1.5–2.0 V vs Ag/AgCl for 60–360 s) results in significantly increased rate constants ( ) for heterogeneous electron‐transfer with [Fe(CN)6]3?/4? (from 8.34×10?5 cm s?1 for as‐received MWCNTs to 3.67×10?3 cm s?1 for MWCNTs that were electrochemically activated at 2.0 V for 180 s). The increase in the value of arises from the introduction of wall defects exposing edge planes of the MWCNTs, as observed by high‐resolution TEM. The density of the edge plane defects increases from almost zero (for as‐received MWCNTs) to 3.7 % (for MWCNTs electrochemically activated at 2.0 V for 180 s). High‐resolution X‐ray photoelectron spectroscopy (HR‐XPS), Raman spectroscopy, and electrochemical impedance spectroscopy were used to gain a better understanding of the phenomena. HR‐XPS revealed that the increase in electrochemical activation potential increases the number of oxygen‐containing groups on the surface of carbon nanotubes. 相似文献
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采用循环伏安法和示差脉冲伏安法研究了麦芽酚在多壁碳纳米管修饰电极上的电化学行为,建立了一种直接测定饮料样品中麦芽酚含量的电分析测试方法. 在pH=8.5的NH3 ·H2 O-NH4 Cl 缓冲溶液中,麦芽酚在多壁碳纳米管修饰电极上于0.55 V(vs.SCE)产生不可逆的氧化峰. 该修饰电极对麦芽酚的电化学反应具有促进作用,阳极峰电流与溶液中麦芽酚的浓度成正比,线性范围为5.0×10-6~9.0×10-4mol/L,检出下限为2.0×10-6mol/L.对含5.0×10-5mol/L的麦芽酚溶液平行测定10次的相对标准偏差(RSD)为1.1%.多壁碳纳米管修饰电极具有良好的电极稳定性,可用于饮料样品中麦芽酚的直接测定,避免了繁复费时的样品前处理过程. 将该修饰电极用于啤酒、可乐和葡萄酒样品中麦芽酚测定,回收率为98%~103%. 相似文献
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IntroductionDirectelectrochemistryofenzymeshasarousedincreasinginterestofmanyresearchersasitisapreferablewayforproducingarealreagent1essbiosensor.Glucoseoxidase(GOD),beingaflavoprotein,iswell-knownduetoitswidespreaduseinthebiosensors'Recently,agreatnumberofpeoplehaveat-temptedtoachievedirectelectrontransferbetweenGODandvariouselec-trodes[l-19].Szucselal.determinedtheshapeandsizeoftheGODmoleculead-sorbedonagoldelectrodebyel1ipsometry['jandexamineddirectelectrontrans-ferbetweentheadsorbedenz… 相似文献