Phasor transform to extract glucose and ascorbic acid data in an amperometric sensor

被引:7
|
作者
Iyengar, S [1 ]
Hall, EAH [1 ]
机构
[1] Univ Cambridge, Inst Biotechnol, Cambridge CB2 1QT, England
关键词
D O I
10.1039/b005967f
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
A method for separating the signals from glucose and ascorbic acid on a single recognition surface using an ac immittance technique is presented. It is proposed that each oxidation process can be represented by a unique vector based on psi and Y-O, and that the concentration of each analyte can be determined by monitoring the change in the admittance magnitude in the direction of the characteristic angle for that particular species. The total Faradaic admittance ((Y) over right arrow (F,total)) for all electroactive species present is given by a linear combination of the independent vectors from the different species. In the system tested, the analytes are glucose and ascorbic acid, the former being estimated via the measurand, hydrogen peroxide. Thus, one of the electroactive species (hydrogen peroxide) is not a bulk solution species, but is 'generated' in the enzyme matrix. The admittance measurements from ascorbic acid and the enzyme-generated hydrogen peroxide showed the characteristic phase angles of each oxidation signal, allowing for good spatial resolution. The behaviour of each of these analytes is presented and calibration curves tested. Based on the calibration curves and the basis vectors, samples containing both glucose and ascorbic acid were measured by transforming the measured total admittance from the complex Cartesian space into 'analyte space', where the X-Y axes are given by the basis vectors (y) over cap (EGHP,GOD) and (y) over cap (AA,GOD), respectively.
引用
收藏
页码:1987 / 1992
页数:6
相关论文
共 50 条
  • [21] Congo red immobilized on a silica/aniline xerogel: Preparation and application as an amperometric sensor for ascorbic acid
    Pavan, FA
    Ribeiro, ES
    Gushikem, Y
    ELECTROANALYSIS, 2005, 17 (07) : 625 - 629
  • [22] TiO2/reduced graphene oxide nanocomposite as efficient ascorbic acid amperometric sensor
    Harraz, Farid A.
    Faisal, M.
    Ismail, Adel A.
    Al-Sayari, S. A.
    Al-Salami, A. E.
    Al-Hajry, A.
    Al-Assiri, M. S.
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2019, 832 : 225 - 232
  • [23] CONCENTRATION-STEP AMPEROMETRIC SENSOR OF L-ASCORBIC-ACID USING CUCUMBER JUICE
    UCHIYAMA, S
    UMETSU, Y
    ANALYTICA CHIMICA ACTA, 1991, 255 (01) : 53 - 57
  • [24] Eliminating the interference of ascorbic acid and uric acid to the amperometric glucose biosensor by cation exchangers membrane and size exclusion membrane
    Yuan, CJ
    Hsu, CL
    Wang, SC
    Chang, KS
    ELECTROANALYSIS, 2005, 17 (24) : 2239 - 2245
  • [25] POLAROGRAPHY OF REDUCED GLUTATHIONE AND GLUTATHIONE - ASCORBIC ACID MIXTURES - AMPEROMETRIC METHOD FOR DETERMINATION OF ASCORBIC ACID
    COULSON, DM
    CROWELL, WR
    FRIESS, SL
    ANALYTICAL CHEMISTRY, 1950, 22 (04) : 525 - 529
  • [26] A Cheap Amperometric and Optical Sensor for Glucose Determination
    Scavetta, E.
    Ballarin, B.
    Tonelli, D.
    ELECTROANALYSIS, 2010, 22 (04) : 427 - 432
  • [27] Ascorbic acid amperometric sensor using a graphene-wrapped hierarchical TiO2 nanocomposite
    Li Fu
    Yu-Hong Zheng
    Zhu-Xian Fu
    Chemical Papers, 2015, 69 : 655 - 661
  • [28] Construction of Mediated Amperometric Bienzyme Glucose Sensor
    SUN Chang-qing
    DU Wen-yuant
    GAO Qian and XU Hong-ding (Department of chemistry
    ChemicalResearchinChineseUniversities, 1996, (01) : 16 - 21
  • [29] AN AMPEROMETRIC GLUCOSE SENSOR WITH COMBINED ENZYME LAYERS
    WEISS, T
    CAMMANN, K
    HORMONE AND METABOLIC RESEARCH, 1988, 20 : 23 - 25
  • [30] Construction of mediated amperometric bienzyme glucose sensor
    Sun, CQ
    Du, WY
    Gao, Q
    Xu, HD
    CHEMICAL RESEARCH IN CHINESE UNIVERSITIES, 1996, 12 (01) : 16 - 21