Combining 3D printing and screen-printing in miniaturized, disposable sensors with carbon paste electrodes

被引:0
|
作者
Materon, Elsa Maria [1 ,2 ]
Wong, Ademar [1 ]
Gomes, Leonardo Mariano [3 ]
Ibáñez-Redín, Gisela [2 ]
Joshi, Nirav [2 ]
Oliveira, Osvaldo N. [2 ]
Faria, Ronaldo C. [1 ]
机构
[1] Chemistry Department, Federal University of São Carlos Cp 676, São Carlos,13565-905, Brazil
[2] São Carlos Institute of Physics, University of São Paulo, Av. Trabalhador São-carlense, 400, São Carlos SP,13566-590, Brazil
[3] Department of Computer and Electrical Engineering, São Carlos School of Engineering (EESC), University of São Paulo, Av. Trabalhador São-Carlense, 400, São Carlos SP,13566-590, Brazil
来源
Journal of Materials Chemistry C | 2021年 / 9卷 / 17期
关键词
Screen printing;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper we report on a modular design that allows one to fabricate electrochemical sensors upon combining 3D printing and screen printing. The usefulness of the design is showcased with graphene paste electrodes (GPE) coated with magnetic microspheres used to detect the drug nimesulide (NIM), biomarkers dopamine (DOP) and uric acid (UA). Under optimized conditions, the limit of detection was 0.0023 μmol L-1 in the range from 0.5 to 9 μmol L-1, 0.01 μmol L-1 within the range from 0.8 to 6 μmol L-1, and 0.0034 μmol L-1 from 0.7 to 10 μmol L-1 for dopamine, nimesulide, and uric acid, respectively. The three analytes could also be detected in blood serum and artificial urine samples within approximately 20 s, which is promising for clinical applications. With the modular design, the paste can be prepared with a variety of nanomaterials, functionalized with biomolecules and magnetic particles, and then stored for later use. The working electrode may also be polished to allow for reuse. Furthermore, in contrast to standard sensors made with carbon pastes, the electrochemical sensor proposed here requires small volumes (20-200 μL), which is crucial for drug monitoring and other biomedical applications. © The Royal Society of Chemistry.
引用
收藏
页码:5633 / 5642
相关论文
共 50 条
  • [21] Screen-printing of flexible semi-transparent electrodes and devices based on silver nanowire networks
    Elen, K.
    Penxten, H.
    Nagels, S.
    Deferme, W.
    Lutsen, L.
    Hardy, A.
    Van Bael, M. K.
    NANOTECHNOLOGY, 2018, 29 (42)
  • [22] Modified standard screen-printing technology for processing of free-standing physical and chemical sensors
    Debeda, Helene
    Lucat, Claude
    2014 IEEE SENSORS, 2014, : 2097 - 2100
  • [23] Development of tin oxide material by screen-printing technology for micro-machined gas sensors
    Riviere, B
    Viricelle, JP
    Pijolat, C
    SENSORS AND ACTUATORS B-CHEMICAL, 2003, 93 (1-3) : 531 - 537
  • [24] Pistachio shell-derived carbon dots and their screen-printing formulation for anticounterfeiting applications
    Chinmayi, H. D.
    Ullal, Namratha
    Sunil, Dhanya
    Kulkarni, Suresh D.
    Anand, P. J.
    Udaya Bhat, K.
    JOURNAL OF COATINGS TECHNOLOGY AND RESEARCH, 2024, 21 (04) : 1321 - 1332
  • [25] Porous carbon layers for counter electrodes in dye-sensitized solar cells: Recent advances and a new screen-printing method
    Ito, Seigo
    Mikami, Yuuki
    PURE AND APPLIED CHEMISTRY, 2011, 83 (11) : 2089 - 2106
  • [26] Electrical Properties of BaTiO3 Thick Films Fabricated by Screen-printing Method
    Ahn, Byeong-Lib
    Lee, Sung-Gap
    TRANSACTIONS ON ELECTRICAL AND ELECTRONIC MATERIALS, 2007, 8 (04) : 149 - 152
  • [27] Development of a Dye-Sensitized Solar Cell with a Carbon Counter Electrode Formed by Screen-Printing
    Kakuda, Tatsunori
    Terasawa, Takashi
    Futakuchi, Tomoaki
    ELECTROCERAMICS IN JAPAN XIV, 2011, 485 : 157 - +
  • [28] Optical security and anti-counterfeiting using 3D screen printing
    Wu, W. H.
    Yang, W. K.
    Cheng, S. H.
    Kuo, M. K.
    Lee, H. W.
    Chang, C. C.
    Jeng, G. R.
    Liu, C. P.
    DISPLAY TECHNOLOGIES AND APPLICATIONS FOR DEFENSE, SECURITY, AND AVIONICS, 2007, 6558
  • [29] Developing Screen-Printing Processes for Silver Electrodes Towards All-Solution Coating Processes for Solar Cells
    Chung, Tsui-Yun
    Cha, Hou-Chin
    Chuang, Chih-Min
    Tsao, Cheng-Si
    Glowienka, Damian
    Wang, Yi-Han
    Wu, Hui-Chun
    Huang, Yu-Ching
    POLYMERS, 2024, 16 (21)
  • [30] Low-Cost and Disposable Electrowetting-on-Dielectric Lab on a Chip With an Integrated Electrochemical Detector Fabricated by Screen-Printing Process
    Ugsornrat, Kessararat
    Pasakon, Patiya
    Karuwan, Chanpen
    Sriprachuabwong, Chakrit
    Maturos, Thitima
    Pogfay, Tawee
    Wisitsoraat, Anurat
    Tuantranont, Adisorn
    IEEE SENSORS JOURNAL, 2019, 19 (19) : 8597 - 8604