Scalable 3D printing method for the manufacture of single-material fluidic devices with integrated filter for point of collection colourimetric analysis

被引:21
作者
Balavandy, Sepideh Keshan [1 ]
Li, Feng [1 ]
Macdonald, Niall P. [2 ,6 ]
Maya, Fernando [1 ]
Townsend, Ashley T. [3 ]
Frederick, Kimberley [4 ]
Guijt, Rosanne M. [5 ]
Breadmore, Michael C. [1 ,2 ]
机构
[1] Univ Tasmania, Australian Ctr Res Separat Sci, Sch Nat Sci, Private Bag 75, Hobart, Tas 7001, Australia
[2] Univ Tasmania, ARC Ctr Excellence Electromat Sci ACES, Sch Chem, Hobart, Tas 7001, Australia
[3] Univ Tasmania, Cent Sci Lab, Hobart, Tas 7001, Australia
[4] Skidmore Coll, Dept Chem, Saratoga Springs, NY 12866 USA
[5] Deakin Univ, Ctr Reg & Rural Futures, Geelong, Vic, Australia
[6] KLA, Kilcarbery Business Pk, Dublin 22, Ireland
关键词
3D printing; Integrated filter; Fluidic devices; Colourimetric analysis;
D O I
10.1016/j.aca.2020.11.033
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Assembly and bonding are major obstacles in manufacturing of functionally integrated fluidic devices. Here we demonstrate a single-material 3D printed device with an integrated porous structure capable of filtering particulate matter for the colourimetric detection of iron from soil and natural waters. Selecting a PolyJet 3D printer for its throughput, integrated filters were created exploiting a phenomenon occurring at the interface between the commercially available build material (Veroclear-RGD810) and water-soluble support material (SUP707). The porous properties were tuneable by varying the orientation of the print head relative to the channel and by varying the width of the build material. Porous structures ranging from 100 to 200 mm in thickness separated the sample and reagent chambers, filtering particles larger than 15 mm in diameter. Maintaining the manufacturing throughput of the Polyjet printer, 221 devices could be printed in 1.5 h (similar to 25 s per device). Including the 12 h post-processing soak in sodium hydroxide to remove the solid support material, the total time to print and process 221 devices was 13.5 h (3.6 min per device), with a material cost of $2.50 each. The applicability of the fluidic device for point of collection analysis was evaluated using colourimetric determination of iron from soil slurry and environmental samples. Following the reduction of Fe3+ to Fe2+ using hydroxylammonium chloride, samples were introduced to the fluidic device where particulate matter was retained by the filter, allowing for particulate-free imaging of the red complex formed with 1,10-phenanthroline using a smartphone camera. The calibration curve ranged from of 1e10 0 mg L-1 Fe2+ and good agreement (95%) was obtained between the point of collection device and Sector Field ICP-MS. (c) 2020 Elsevier B.V. All rights reserved.
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页数:8
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共 44 条
[1]   3D-printed microfluidic devices [J].
Amin, Reza ;
Knowlton, Stephanie ;
Hart, Alexander ;
Yenilmez, Bekir ;
Ghaderinezhad, Fariba ;
Katebifar, Sara ;
Messina, Michael ;
Khademhosseini, Ali ;
Tasoglu, Savas .
BIOFABRICATION, 2016, 8 (02)
[2]   A novel method for the filterless preconcentration of iron [J].
Andersen, JET .
ANALYST, 2005, 130 (03) :385-390
[3]   Lab-on-Paper with Dual Electrochemical/Colorimetric Detection for Simultaneous Determination of Gold and Iron [J].
Apilux, Amara ;
Dungchai, Wijitar ;
Siangproh, Weena ;
Praphairaksit, Narong ;
Henry, Charles S. ;
Chailapakul, Orawon .
ANALYTICAL CHEMISTRY, 2010, 82 (05) :1727-1732
[4]   Fe isotope variations in natural materials measured using high mass resolution multiple collector ICPMS [J].
Arnold, GL ;
Weyer, S ;
Anbar, AD .
ANALYTICAL CHEMISTRY, 2004, 76 (02) :322-327
[5]   3D-Printed Microfluidics [J].
Au, Anthony K. ;
Huynh, Wilson ;
Horowitz, Lisa F. ;
Folch, Albert .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2016, 55 (12) :3862-3881
[6]   Separation, preconcentration and inductively coupled plasma-mass spectrometric (ICP-MS) determination of thorium(IV), titanium(IV), iron(III), lead(II) and chromium(III) on 2-nitroso-1-naphthol impregnated MCI GEL CHP20P resin [J].
Aydin, Funda Armagan ;
Soylak, Mustafa .
JOURNAL OF HAZARDOUS MATERIALS, 2010, 173 (1-3) :669-674
[7]   SAMPLE STORAGE FOR INORGANIC-COMPOUNDS IN SURFACE-WATER - A REVIEW [J].
BENOLIEL, MJ .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL ANALYTICAL CHEMISTRY, 1994, 57 (03) :197-206
[8]   The upcoming 3D-printing revolution in microfluidics [J].
Bhattacharjee, Nirveek ;
Urrios, Arturo ;
Kanga, Shawn ;
Folch, Albert .
LAB ON A CHIP, 2016, 16 (10) :1720-1742
[9]   3D printed device including disk-based solid-phase extraction for the automated speciation of iron using the multisyringe flow injection analysis technique [J].
Calderilla, Carlos ;
Maya, Fernando ;
Cerda, Victor ;
Leal, Luz O. .
TALANTA, 2017, 175 :463-469
[10]   PolyJet 3D-Printed Enclosed Microfluidic Channels without Photocurable Supports [J].
Castiaux, Andre D. ;
Pinger, Cody W. ;
Hayter, Elizabeth A. ;
Bunn, Marcus E. ;
Martin, R. Scott ;
Spence, Dana M. .
ANALYTICAL CHEMISTRY, 2019, 91 (10) :6910-6917