Integration of a Smartphone Application with a μPAD for Rapid Colorimetric Detection of Glucose

被引:0
作者
Golcez, Tansu [1 ]
Kilic, Volkan [2 ]
Sen, Mustafa Comma [1 ]
机构
[1] Izmir Katip Celebi Univ, Biyomed Muhendisligi, Izmir, Turkey
[2] Izmir Katip Celebi Univ, Elekt Elekt Muhendisligi, Izmir, Turkey
来源
2019 MEDICAL TECHNOLOGIES CONGRESS (TIPTEKNO) | 2019年
关键词
mu PAD; glucose; smartphone-based colorimetric analysis; image processing;
D O I
暂无
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Paper-based sensors have great potential for use in many different fields so far. In this study, a paper-based microfluidic analytical device (mu PAD) was integrated with a smartphone application capable of offline (no internet access) image processing and analysis for rapid colorimetric glucose detection. A paper towel was preferred due to its better water absorption efficiency than other papers. A stamp containing a 3D printed mold was used to form hydrophobic channels on a paper towel for the production of ADPAD. A hydrophobic by nature and light polymerizable resin was used as the ink. In order to increase the accuracy of the analysis, an image processing algorithm has been developed for the extraction of the region of interest (ROI) on the uPAD. The developed integrated platform gave a linear response in the range of 0.1 to 1 mM glucose and the limit of detection was calculated as 66.2 mu M. The whole analysis was completed in less than one minute. Finally, a smart mobile phone application capable of offline image processing was developed to make the system user friendly. The integrated sensor system is portable, fast, user-friendly, ultra-low cost, usable by everyone, simple and sensitive.
引用
收藏
页码:441 / 444
页数:4
相关论文
共 10 条
[1]   Review on microfluidic paper-based analytical devices towards commercialisation [J].
Akyazi, Tugce ;
Basabe-Desmonts, Lourdes ;
Benito-Lopez, Fernando .
ANALYTICA CHIMICA ACTA, 2018, 1001 :1-17
[2]   Fluidic flow delay by ionogel passive pumps in microfluidic paper-based analytical devices [J].
Akyazi, Tugce ;
Saez, Janire ;
Elizalde, Jorge ;
Benito-Lopez, Fernando .
SENSORS AND ACTUATORS B-CHEMICAL, 2016, 233 :402-408
[3]   Glucose Sensing for Diabetes Monitoring: Recent Developments [J].
Bruen, Danielle ;
Delaney, Colm ;
Florea, Larisa ;
Diamond, Dermot .
SENSORS, 2017, 17 (08)
[4]   Two-ply channels for faster wicking in paper-based microfluidic devices [J].
Camplisson, Conor K. ;
Schilling, Kevin M. ;
Pedrotti, William L. ;
Stone, Howard A. ;
Martinez, Andres W. .
LAB ON A CHIP, 2015, 15 (23) :4461-4466
[5]   Highly sensitive colorimetric detection of glucose and uric acid in biological fluids using chitosan-modified paper microfluidic devices [J].
Gabriel, Ellen F. M. ;
Garcia, Paulo T. ;
Cardoso, Thiago M. G. ;
Lopes, Flavio M. ;
Martins, Felipe T. ;
Coltro, Wendell K. T. .
ANALYST, 2016, 141 (15) :4749-4756
[6]  
Kilic V, 2018, Color Detection, P1
[7]   Highly Sensitive and Wearable In2O3 Nanoribbon Transistor Biosensors with Integrated On-Chip Gate for Glucose Monitoring in Body Fluids [J].
Liu, Qingzhou ;
Liu, Yihang ;
Wu, Fanqi ;
Cao, Xuan ;
Li, Zhen ;
Alharbi, Mervat ;
Abbas, Ahmad N. ;
Amer, Moh R. ;
Zhou, Chongwu .
ACS NANO, 2018, 12 (02) :1170-1178
[8]   Paper-Based Colorimetric Biosensor for Tear Glucose Measurements [J].
Moreira Gabriel, Ellen Flavia ;
Garcia, Paulo Tarso ;
Lopes, Flavio Marques ;
Tomazelli Coltro, Wendell Karlos .
MICROMACHINES, 2017, 8 (04)
[9]   One-step polymer screen-printing for microfluidic paper-based analytical device (μPAD) fabrication [J].
Sameenoi, Yupaporn ;
Nongkai, Piyaporn Na ;
Nouanthavong, Souksanh ;
Henry, Charles S. ;
Nacapricha, Duangjai .
ANALYST, 2014, 139 (24) :6580-6588
[10]   Electrochemical evaluation of sarcomeric α-actinin in embryoid bodies after gene silencing using an LSI-based amperometric sensor array [J].
Sen, Mustafa ;
Ino, Kosuke ;
Inoue, Kumi Y. ;
Suda, Atsushi ;
Kunikata, Ryota ;
Matsudaira, Masahki ;
Shiku, Hitoshi ;
Matsue, Tomokazu .
ANALYTICAL METHODS, 2014, 6 (16) :6337-6342