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1.
将NaAuCl4、葡萄糖氧化酶(GOx)和葡萄糖混合,借一步酶促反应制得吸附GOx的金纳米颗粒(AuNPs),再通过滴干修饰法研制了Nafion/GOx-AuNPs修饰的玻碳(GC)电极,并考察了该酶电极上GOx的直接电化学和生物传感性能. 这种酶法合成的GOx-AuNPs复合物有良好的酶直接电化学活性,也保持了GOx的生物活性,似可归因于酶法合成的纳米金更接近酶氧化还原活性中心的缘故. 该酶电极在-0.4 V(vs. SCE)电位下,其稳态电流下降与葡萄糖浓度(0.5 4 mmol·L-1)成正比,检测下限0.2 mol·L-1.  相似文献   

2.
张谦  吴抒遥  何茂伟  张玲  刘洋  李景虹  宋溪明 《化学学报》2012,70(21):2213-2219
通过共价键作用和原位还原法制备了金纳米粒子/壳聚糖-石墨烯纳米复合材料(AuNPs/Chit-GP). 利用FT-IR, UV-vis, TEM以及XRD对所合成的纳米复合物的结构和形貌进行了表征. AuNPs/Chit-GP呈现明显的正电荷, 因此可通过静电相互作用固载葡萄糖氧化酶(GOD), 并构建GOD/AuNPs/Chit-GP/GC修饰电极. 该修饰电极不仅可成功地实现GOD与电极间的直接电子转移, 还对葡萄糖表现出良好的催化性能. 实验结果表明, 其催化的线性范围为2.1~5.7 μmol/L, 检出限为0.7 μmol/L, 灵敏度为79.71 mA·cm-2·mM-1. 这种集金属纳米粒子、生物相容性高分子以及石墨烯为一体的纳米复合物的构筑为无媒介体的电化学生物传感器的研究提供了一个良好的平台.  相似文献   

3.
以多壁纳米碳管(MWNTS)为电子媒介体和酶的吸附载体,利用层层累积的自组装技术固定葡萄糖氧化酶(GOX)的多层(MWNTa/GOx).复合薄膜修饰电极,制备了一种新型葡萄糖生物传感器.结果表明,传感器对葡萄糖的响应电流值随着MWNTa//GOx复合薄膜层数的不同而变化,当MWNTa//GOx复合薄膜的层教为6时,响应电流值迭到最大.(MWNTs/GOx).复合薄膜修饰的葡萄糖生物传感器对30mmol/L葡萄糖的响应电流为1.63μA,响应时间仅为6.7 s.该生物传感器检测的线性范围为0.5~15 mmol/L,最低检测浓度可达0.09 mmol/L.  相似文献   

4.
吴文伟  王翌  刘可鑫  李天松  杨咏洁 《色谱》2020,38(11):1332-1339
研究以双特异性核酸适配体A3作为传感探针、纳米金(AuNPs)为指示剂、NaCl溶液为聚集诱导剂,构建了一种新型的免标记AuNPs比色生物传感器,可实现水产品中孔雀石绿(MG)和无色孔雀石绿(LMG)的同步、快速、可视化检测。该方法的检测原理是核酸适配体A3对MG和LMG有双特异性识别能力,可作为MG和LMG理想的识别受体。它可通过静电作用吸附到AuNPs表面,保护AuNPs并抑制高盐溶液诱导的聚集,AuNPs溶液颜色不变,即为红色;当加入靶标MG或LMG后,该核酸适配体能够与靶标特异性结合,并从AuNPs表面上解离,AuNPs失去保护作用而在高盐溶液诱导下发生聚集,溶液颜色由红变蓝。根据颜色变化,可通过肉眼定性或通过光谱仪定量分析MG和LMG的残留量。该方法首先将50μL的核酸适配体A3(终浓度150 nmol/L)与150μL的AuNPs(终浓度1.25 nmol/L)混合,室温孵育6 min。随后加入50μL待测液,室温孵育30 min。最后加入50μL NaCl(终浓度150 mmol/L), 4 min后观察溶液颜色变化,并分别测定MG和LMG在520 nm和650 nm下的...  相似文献   

5.
利用纳米金(Au NPs)与还原氧化石墨烯(rGO)复合纳米材料制备了葡萄糖氧化酶生物传感器并用于饮料中葡萄糖含量的检测。将壳聚糖作为还原剂及稳定剂,通过一步法合成了Au NPs-rGO复合材料,并通过物理吸附固定葡萄糖氧化酶(GOx)来制作GOx生物传感器。该传感器在磷酸盐缓冲溶液(0.1 mol/L,p H6.0)中,-0.45 V(vs.Ag/Ag Cl)电位下电流法检测葡萄糖含量,线性检测范围为0.01~0.88 mmol/L,灵敏度为22.54μA·mmol-1·L·cm-2,检出限为1.01μmol/L,且表观米氏常数为0.497 mmol/L。该传感器用于多种饮料中葡萄糖含量的直接检测,结果满意。  相似文献   

6.
采用化学气相沉积法生长多晶石墨烯(Graphene, G),转移至聚对苯二甲酸乙二醇酯(PET)薄膜表面,通过控制金溶胶蒸发速率,在多晶石墨烯表面组装均匀分布的亚单层金纳米粒子(AuNPs);然后修饰巯基乙酸,通过共价交联反应将葡萄糖氧化酶固定于AuNPs表面,构建基于PET膜的石墨烯/金纳米粒子/葡萄糖氧化酶(G/AuNPs/GOD)柔性电极.此电极在工作电位0.6 V(vs.SCE电极)、pH 7.0磷酸盐缓冲溶液、室温25℃条件下,差分脉冲伏安法响应电流与被测葡萄糖浓度在0.05~10.55 mmol/L范围内呈线性关系,线性方程为I(108A)=0.2629 C(mmol/L)+1.4149,线性相关系数 r=0.9955,检出限1 μmol/L (3σ). G/AuNPs/GOD柔性电极的制备可为特定环境和可穿戴设备的葡萄糖检测提供了新的途径和方法,拓展了葡萄糖检测的应用范围.  相似文献   

7.
制备了基于酶-抗体共固定二氧化锆(ZrO2)纳米探针进行信号放大的盐酸特伦克罗瘦肉精(CLB)检测安培免疫传感器。首先,利用ZrO2纳米粒子负载葡萄糖氧化酶(Glucose oxidase,GOD)和CLB抗体(Clen-buterol antibody,anti-CLB),制得纳米探针(ZNPs/GOD-anti-CLB signal probe,简称ZNPG)。同时将聚二烯丙基二甲基氯化铵[Poly(diallyldimethylammonium chloride),PDDA]、氯化血红素(Hemin)和纳米金(AuNPs)层层组装到多壁碳纳米管(MWCNTs)修饰的丝网印刷电极(SPCE)表面,制得SPCE│MWCNTs/(PDDA/Hemin/AuNPs)n电流型传感器,可对H2O2产生还原催化电流。检测CLB时,将样品和ZNPG一起加入预先包埋好CLB的96孔板底部。样品CLB与板底CLB共同竞争结合孔溶液中的纳米探针ZNPG。反应结束后加入葡萄糖,板底ZNPG-CLB免疫复合物上的GOD催化葡萄糖氧化产生H2O2,可通过传感器检测。电流下降值(ΔI)与样品CLB成反比,可用于CLB的定量分析。由于ZNPG上具有高的GOD酶标记密度,故可以显著放大检测信号,提高检测灵敏度。在最佳条件下(pH 7.0,温育时间30 min,温育温度37℃),此传感器对CLB的检测范围为0.003~100μg/L,检测下限为1 ng/L,比酶联免疫分析法(ELISA)法灵敏度提高2个数量级,在猪饲料样品中进行加标回收实验,平均回收率达93.6%,相对标准偏差(RSD)小于2.5%,精密度好。同时该传感器具有可重复使用、灵敏快速,适合于食物样品中痕量CLB现场检测。  相似文献   

8.
基于Nafion/碳纳米粒子修饰的葡萄糖传感器   总被引:1,自引:0,他引:1  
采用滴涂法制备了Nafion/碳纳米粒子复合物修饰玻碳电极,该电极对H2O2具有良好的电催化氧化性能。还利用滴涂法制备了Nafion/碳纳米粒子复合物包裹的葡萄糖酶电化学生物传感器,该生物传感器对葡萄糖有着良好的电催化作用。应用该传感器对葡萄糖进行了检测,检测线性范围为2.0×10-6~6.0×10-3mol/L,检出限为1.6×10-6mol/L(S/N=3),实验结果表明该传感器具有良好的稳定性、重现性和抗干扰能力。对小鼠血清样品中的葡萄糖进行检测,结果令人满意。  相似文献   

9.
制备了一种聚乙二醇(PEG)和柠檬酸根不对称修饰的"两面神"型金纳米粒子(Janus AuNPs)比色传感器,并基于此建立了铁离子(Fe~(3+))比色检测的新方法。首先,利用柠檬酸钠还原法制备了粒径相对较大的金纳米粒子,随后,以玻片为基底,将大粒径金纳米粒子修饰在玻片上,利用玻片掩蔽部分柠檬酸根位点,并进一步在金纳米粒子非接触区域上修饰大量PEG链,得到柠檬酸根和PEG不对称修饰的Janus AuNPs。引入Fe~(3+)后,有限区域内的柠檬酸根诱导Janus AuNPs发生定向聚集,形成金纳米粒子寡聚体并在水溶液中保持稳定。Janus AuNPs溶液吸光度比值与Fe~(3+)浓度在1μmol/L~10 mmol/L范围内呈线性变化(y=0.129x+0.317),检出限为715 nmol/L。与同类方法相比,该方法操作简便、灵敏度高,且可极大拓宽检测的线性范围。  相似文献   

10.
本文开发了基于纳米金修饰的碳纤维超微电极(CFME)用于儿茶素的定量检测。通过使用柠檬酸三钠还原氯金酸制得纳米金粒子(AuNPs),采用恒电位电沉积法将纳米金修饰在CFME表面。在pH 2.00的Tris-HCl缓冲溶液中,采用差分脉冲法和循环伏安法考察了修饰前后电极对儿茶素的电催化性能。结果表明,纳米金修饰电极对儿茶素具有明显的电催化效果。在优化实验条件下,纳米金修饰的碳纤维超微电极(AuNPs/CFME)与儿茶素浓度在1.00×10-3~10.0μmol/L范围内呈良好的线性关系,且AuNPs/CFME的电化学性能非常稳定,具有良好的重现性。该方法操作简单,准确性高,可用于对儿茶素进行定量检测。  相似文献   

11.
《中国化学快报》2021,32(10):3185-3188
In this research, a novel bird nest-like zinc oxide (BN-ZnO) nanostructures were prepared by a simple solvothermal method. A sensitive electrochemical glucose biosensor was for the first time developed based on the immobilization of glucose oxidase (GOx) on nanostructured BN-ZnO modified electrode. The BN-ZnO nanostructure and the resultant biosensor were characterized by scanning electron microscope, X-ray diffraction spectroscopy, Fourier transform infrared spectroscopy, and electrochemical impedance spectroscopy. BN-ZnO nanostructures have large specific surface area and can load large amounts of GOx molecules. Meanwhile, BN-ZnO provides an excellent microenvironment to retain the native bioactivity of enzymes and to promote direct electron transfer between GOx and electrode surface. The proposed biosensor shows a wide linear range of 0.005–1.6 mmol/L, high sensitivity of 15.6 mA L mol−1 cm−2 with a low detection limit of 0.004 mmol/L. The resulting biosensor also shows excellent selectivity, acceptable stability and reproducibility, and can be successfully applied in the detection of glucose in human serum samples at −0.37 V.  相似文献   

12.
联吡啶钌(Ru(bpy)■)拥有优良的电致化学发光(ECL)性能,但其较好的水溶性使其固载面临巨大问题。该文制备了Pt纳米粒子与Ru(bpy)■的复合物(Pt NPs-Ru),将其修饰于电极并进一步固载葡萄糖氧化酶(GOx)制得传感器。基于H2O2对Ru(bpy)■-三乙胺体系ECL信号的猝灭作用,随着葡萄糖浓度的增加,其在GOx的催化下原位产生的H2O2量增多,导致ECL信号逐渐减弱,从而实现葡萄糖的检测。ECL强度与葡萄糖浓度的对数在1.0×10-8~5.0×10-5 mol/L范围内呈良好的线性关系,检出限低至5.2×10-9 mol/L。传感器具有好的稳定性和高的选择性。Pt NPs-Ru复合物为ECL传感器的构建提供了良好平台,为葡萄糖检测提供了新方法。  相似文献   

13.
The one-step synthesis is reported of a nanofilm composed of iron oxide and gold nanoparticles in a chitosan matrix that can act as a novel matrix for the immobilization of glucose oxidase (GOx) to fabricate a glucose biosensor. The use for the composite film strongly increased the effective electrode surface for loading of GOx. The size and shape of the iron oxide nanoparticles were examined by transmission electron micrograph. Direct electron transfer and electrocatalysis by GOx was investigated via cyclic voltammetry and chronoamperometry. Under optimized conditions, the biosensor has a response time of 6?s and a linear response in the range between 3???M and 0.57?mM of glucose, with a detection limit of 1.2???M at a signal-to-noise ratio of 3. This novel and disposable mediatorless glucose biosensor may form the basis for a future mass-produced glucose biosensor.
Figure
In this paper, based on the direct electrochemistry of redox enzyme, we try to integrate the excellent properties of iron oxide-gold nanoparticle-chitosan composite film with the advantages of one-step electrodeposition to fabricate a sensitive and stable glucose biosensor.  相似文献   

14.
In this study, a new glucose biosensor was fabricated by immobilizing glucose oxidase (GOx) on platinum nanoparticles (Pt NPs) decorated reduced graphene oxide (rGO)/Zn‐MOF‐74 hybrid nanomaterial. Herein, the biosensor fused the advantages of rGO with those of porous Zn‐MOF and conductive Pt NPs. This has not only enlarged the surface area and porosity for the efficient GOx immobilization and faster mass transport, but also provided favorable electrochemical features such as high current density, remarkable electron mobility through metal nanoparticles, and improved electron transfer between the components. The GOx‐rGO/Pt NPs@Zn‐MOF‐74 coated electrode displayed a linear measurement range for glucose from 0.006 to 6 mM, with a detection limit of 1.8 μM (S/N: 3) and sensitivity of 64.51 μA mM?1 cm?2. The amperometric response of the enzyme biosensor demonstrated the typical behavior of Michaelis‐Menten kinetics. The obtained satisfying sensitivity and measurement range enabled fast and accurate glucose measurement in cherry juice using the fabricated biosensor. The water‐stable Zn‐MOF‐74 demonstrated higher enzyme loading capacity and can be potent supporting material for biosensor construction.  相似文献   

15.
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   

16.
《Electroanalysis》2018,30(8):1642-1652
A newly developed amperometric glucose biosensor based on graphite rod (GR) working electrode modified with biocomposite consisting of poly (pyrrole‐2‐carboxylic acid) (PCPy) particles and enzyme glucose oxidase (GOx) was investigated. The PCPy particles were synthesized by chemical oxidative polymerization technique using H2O2 as initiator of polymerization reaction and modified covalently with the GOx (PCPy‐GOx) after activation of carboxyl groups located on the particles surface with a mixture of N‐(3‐dimethylaminopropyl)‐N′‐ethylcarbodiimide hydrochloride (EDC) and N‐hydroxysuccinimide (NHS). Then the PCPy‐GOx biocomposite was dispersed in a buffer solution containing a certain amount of bovine serum albumin (BSA). The resulting biocomposite suspension was adsorbed the on GR electrode surface with subsequent solvent airing and chemical cross‐linking of the proteins with glutaraldehyde vapour (GR/PCPy‐GOx). It was determined that the current response of the GR/PCPy‐GOx electrodes to glucose measured at +300 mV vs Cl reference electrode was influenced by the duration of the PCPy particles synthesis, pH of the GOx solution used for the PCPy particles modification and the amount of immobilized PCPy‐GOx biocomposite. An optimal pH of buffer solution for operation of the biosensor was found to be 8.0. Detection limit was determined as 0.039 mmol L−1 according signal to noise ratio (S/N: 3). The proposed glucose biosensor was tested in human serum samples.  相似文献   

17.
《Electroanalysis》2017,29(12):2719-2726
A novel glucose biosensor was constructed through the immobilization of glucose oxidase (GOx) on gold nanoparticles (Au NPs) deposited, and chemically reduced graphene oxide (rGO) nanocomposite. In the synthesis, tannic acid (TA) was used for the reduction of both graphene oxide, and Au3+ to rGO, and Au NPs, respectively. Also, by harnessing the π‐π interaction between graphene oxide and TA, and protein‐TA interaction, a novel nanocomposite for the fabrication of a third generation biosensor was successfully constructed. Upon the oxidation of TA to quinone, which is easily reducible at the negative potential range, enhanced electron transfer was obtained. The cyclic voltammetry (CV) results demonstrated a pair of well‐defined and quasi‐reversible redox peaks of active site molecule of GOx. The biosensor exhibited a linear response to glucose concentrations varying from 2 to 10 mM with a sensitivity of 18.73 mA mM−1 cm−2. The fabricated biosensor was used for the determination of glucose in beverages.  相似文献   

18.
A novel electrochemical biosensor design for glucosinolate determination involving bulk‐incorporation of the enzymes glucose oxidase and myrosinase into a colloidal gold ‐ multiwalled carbon nanotubes composite electrode using Teflon as binder is reported. Myrosinase catalyzes the hydrolysis of glucosinolate forming glucose, which is enzymatically oxidized. The generated hydrogen peroxide was electrochemically detected without mediator at the nanostructured composite electrode at E=+0.5 V vs. Ag/AgCl. Under the optimized conditions, the bienzyme MYR/GOx‐Aucoll‐MWCNT‐Teflon exhibited improved analytical characteristics for the glucosinolate sinigrin with respect to a biosensor constructed without gold nanoparticles, i.e. a MYR/GOx‐MWCNT‐Teflon electrode, as well as with respect to other glucosinolate biosensor designs reported in the literature. The biosensor exhibits good repeatability of the amperometric measurements and good interassay reproducibility. Furthermore, the biosensor exhibited a high selectivity with respect to various potential interferents. The usefulness of the biosensor was evaluated by the determination of glucosinolate in Brussel sprout seeds.  相似文献   

19.
We report an ingenious approach for the fabrication of a promising glucose sensor, GOx/Au/CS–IL–MWNT(SH), that exploits the synergistic beneficial characteristics of multiwalled-carbon nanotubes (MWNTs), gold nanoparticles (AuNPs), chitosan (CS) and room temperature ionic liquid (RTIL). Direct electron transfer between glucose oxidase (GOx) and electrode was achieved. Scanning electron microscopy and atomic force microscopy images of GOx/Au/CS–IL–MWNT(SH) reveal that MWNTs and AuNPs are dispersed in CS–IL matrix. Cyclic voltammetry, impedance spectroscopy and chronoamperometry were used to evaluate the performance of biosensor. The GOx/Au/CS–IL–MWNT(SH) biosensor exhibits a linear current response to glucose concentration (1–10 mM) at a low potential of 0.10 V and precludes interferences from uric acid and ascorbic acid. The GOx/Au/CS–IL–MWNT(SH) biosensor has superior performances over GOx/CS–IL–MWNT(SH).  相似文献   

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