Effect of processing temperature on performance of screen-printed graphite electrodes

被引:1
|
作者
Repic, Barbara [1 ,2 ]
Radan, Kristian [1 ]
Marolt, Gregor [3 ]
Golob, Andreja Bencan [1 ]
Kuscer, Danjela [1 ,2 ]
机构
[1] Jozef Stefan Inst, Jamova Cesta 39, Ljubljana, Slovenia
[2] Jozef Stefan Int Postgrad Sch, Jamova Cesta 39, Ljubljana, Slovenia
[3] Univ Ljubljana, Fac Chem & Chem Technol, Vecna Pot 113, Ljubljana, Slovenia
关键词
Screen-printed electrodes; Graphite; Thick films; Cyclic voltammetry; Electrochemistry; Processing; RAMAN-SPECTROSCOPY; GRAPHENE; FERRICYANIDE; DIFFUSION; OXIDATION; DISORDER; PHONON;
D O I
10.1016/j.matchemphys.2025.130455
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Graphite thick films have been considered as an effective integrated working electrode in disposable electrochemical sensors for the on-site detection of pollutants in remote locations. The processing conditions of graphite thick films are not well documented, which hinders progress in their use. By combining profilometry, optical microscopy, X-ray powder diffraction, and Raman spectroscopy, we show that the structural development of graphite thick films strongly depends on the processing temperature. After thermal annealing of the screenprinted paste, the arrangement of the graphene layers improved and the organic components from the paste facilitated the fragmentation of the graphite grains. The resulting sheet resistance of the thick films decreases and contributes to a higher electron-transfer rate and thus to faster redox processes at the electrode surface. The elucidation of the relationship between processing and properties offers new opportunities to customise the properties of graphite thick films for a variety of applications requiring defect engineering.
引用
收藏
页数:8
相关论文
共 50 条
  • [41] Screen-printed electrodes: Transitioning the laboratory in-to-the field
    Ferrari, Alejandro Garcia-Miranda
    Rowley-Neale, Samuel J.
    Banks, Craig E.
    TALANTA OPEN, 2021, 3
  • [42] Immunosensor for Mycobacterium tuberculosis on screen-printed carbon electrodes
    Díaz-González, M
    González-García, MB
    Costa-García, A
    BIOSENSORS & BIOELECTRONICS, 2005, 20 (10): : 2035 - 2043
  • [43] Screen-printed ruthenium dioxide electrodes for pH measurements
    Koncki, R
    Mascini, M
    ANALYTICA CHIMICA ACTA, 1997, 351 (1-3) : 143 - 149
  • [44] Investigations with respect to stabilization of screen-printed enzyme electrodes
    Schumacher, JT
    Münch, I
    Richter, T
    Rohm, I
    Bilitewski, U
    JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, 1999, 7 (1-4) : 67 - 76
  • [45] Screen-Printed Dry Electrodes: Basic Characterization and Benchmarking
    Zalar, Peter
    Saalmink, Milan
    Raiteri, Daniele
    van den Brand, Jeroen
    Smits, Edsger C. P.
    ADVANCED ENGINEERING MATERIALS, 2020, 22 (11)
  • [46] Screen-printed electrodes as versatile electrochemical sensors and biosensors
    Cinti, Stefano
    Moscone, Danila
    Arduini, Fabiana
    2017 IEEE EAST-WEST DESIGN & TEST SYMPOSIUM (EWDTS), 2017,
  • [47] SCREEN-PRINTED ELECTRODES FOR STRIPPING MEASUREMENTS OF TRACE MERCURY
    WANG, J
    TIAN, B
    ANALYTICA CHIMICA ACTA, 1993, 274 (01) : 1 - 6
  • [48] Screen-printed electrodes for biosensing: a review (2008–2013)
    Zahra Taleat
    Alireza Khoshroo
    Mohammad Mazloum-Ardakani
    Microchimica Acta, 2014, 181 : 865 - 891
  • [49] Screen-Printed Electrodes: Fabrication, Modification, and Biosensing Applications
    Paimard, Giti
    Ghasali, Ehsan
    Baeza, Mireia
    CHEMOSENSORS, 2023, 11 (02)
  • [50] Screen-Printed Electrodes for the Voltammetric Sensing of Benzotriazoles in Water
    Muschietti, Alessandra
    Serrano, Nuria
    Arino, Cristina
    Silvia Diaz-Cruz, M.
    Manuel Diaz-Cruz, Jose
    SENSORS, 2020, 20 (07)