Design considerations for reducing sample loss in microfluidic paper-based analytical devices

被引:32
作者
Nguyen, Michael P. [1 ]
Meredith, Nathan A. [2 ]
Kelly, Sydney P. [1 ]
Henry, Charles S. [1 ]
机构
[1] Colorado State Univ, Dept Chem, Ft Collins, CO 80523 USA
[2] Univ Cent Arkansas, Dept Chem, Conway, AR 72032 USA
基金
美国国家科学基金会;
关键词
Microfluidic paper-based analytical device (mu PAD); Sample loss; Colorimetric detection; Device fabrication; Wax printing; PROTIC SOLVENTS; FLOW; IMBIBITION; CHANNELS; DYNAMICS; METALS; WATER;
D O I
10.1016/j.aca.2018.01.036
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The field of microfluidic paper-based analytical devices (mu PADs) is most notably characterized by portable and low-cost analysis; however, struggles to achieve the high sensitivity and low detection limits needs required for many environmental applications hinder widespread adoption of this technology. Loss of analyte to the device material represents an important problem impacting sensitivity. Critically, we found that at least 50% of a Ni(II) sample is lost when being transported down a 30 mm paper channel that is representative of structures commonly found in mu PADs. In this work, we report simple strategies such as adding a waste zone, enlarging the detection zone, and using an elution step to increase device performance. A mu PAD combining the best performing functionalities led to a 78% increase in maximum signal and a 28% increase in sensitivity when transporting Ni(II) samples. Using the optimized mu PAD also led to a 94% increase in maximum signal for Mn(II) samples showing these modifications can be applied more generally. (C) 2018 Elsevier B.V. All rights reserved.
引用
收藏
页码:20 / 25
页数:6
相关论文
共 32 条
[1]   Electrochemical paper-based microfluidic devices [J].
Adkins, Jaclyn ;
Boehle, Katherine ;
Henry, Charles .
ELECTROPHORESIS, 2015, 36 (16) :1811-1824
[2]   Development of a Quasi-Steady Flow Electrochemical Paper-Based Analytical Device [J].
Adkins, Jaclyn A. ;
Noviana, Eka ;
Henry, Charles S. .
ANALYTICAL CHEMISTRY, 2016, 88 (21) :10639-10647
[3]   Advances in Microfluidic Paper-Based Analytical Devices for Food and Water Analysis [J].
Alamo Busa, Lori Shayne ;
Mohammadi, Saeed ;
Maeki, Masatoshi ;
Ishida, Akihiko ;
Tani, Hirofumi ;
Tokeshi, Manabu .
MICROMACHINES, 2016, 7 (05)
[4]   THE COMPOUNDS FORMED BETWEEN NICKEL(II) AND DIMETHYLGLYOXIME BY ALKALINE OXIDATION [J].
BOOTH, E ;
STRICKLAND, JDH .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1953, 75 (12) :3017-3019
[5]   Understanding Wax Printing: A Simple Micropatterning Process for Paper-Based Microfluidics [J].
Carrilho, Emanuel ;
Martinez, Andres W. ;
Whitesides, George M. .
ANALYTICAL CHEMISTRY, 2009, 81 (16) :7091-7095
[6]   Recent Developments in Paper-Based Microfluidic Devices [J].
Cate, David M. ;
Adkins, Jaclyn A. ;
Mettakoonpitak, Jaruwan ;
Henry, Charles S. .
ANALYTICAL CHEMISTRY, 2015, 87 (01) :19-41
[7]   Chemically Modified Cellulose Filter Paper for Heavy Metal Remediation in Water [J].
d'Halluin, Martin ;
Ru-Barrull, Jordi ;
Bretel, Guillaume ;
Labrugere, Christine ;
Le Grognec, Erwan ;
Felpin, Francois-Xavier .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2017, 5 (02) :1965-1973
[8]   Electrochemical Detection for Paper-Based Microfluidics [J].
Dungchai, Wijitar ;
Chailapakul, Orawon ;
Henry, Charles S. .
ANALYTICAL CHEMISTRY, 2009, 81 (14) :5821-5826
[9]   Cellulose swelling by protic solvents: which properties of the biopolymer and the solvent matter? [J].
El Seoud, Omar A. ;
Fidale, Ludmila C. ;
Ruiz, Naiara ;
D'Almeida, Maria Luiza O. ;
Frollini, Elisabete .
CELLULOSE, 2008, 15 (03) :371-392
[10]   Rational design of capillary-driven flows for paper-based microfluidics [J].
Elizalde, Emanuel ;
Urteaga, Raul ;
Berli, Claudio L. A. .
LAB ON A CHIP, 2015, 15 (10) :2173-2180