Flow-Through Quantification of Microplastics Using Impedance Spectroscopy

被引:54
|
作者
Colson, Beckett C. [1 ,2 ,3 ,4 ]
Michel, Anna P. M. [1 ]
机构
[1] Woods Hole Oceanog Inst, Dept Appl Ocean Phys & Engn, Woods Hole, MA 02543 USA
[2] MIT, Dept Mech Engn, Cambridge, MA 02139 USA
[3] MIT WHOI Joint Program Oceanog Appl Ocean Sci & E, Cambridge, MA USA
[4] MIT WHOI Joint Program Oceanog Appl Ocean Sci & E, Woods Hole, MA USA
关键词
microplastics; plastics; impedance spectroscopy; dielectric properties; instrumentation; particle detection; flow-through; environmental sensing;
D O I
10.1021/acssensors.0c02223
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Understanding the sources, impacts, and fate of microplastics in the environment is critical for assessing the potential risks of these anthropogenic particles. However, our ability to quantify and identify microplastics in aquatic ecosystems is limited by the lack of rapid techniques that do not require visual sorting or preprocessing. Here, we demonstrate the use of impedance spectroscopy for high-throughput flow-through microplastic quantification, with the goal of rapid measurement of microplastic concentration and size. Impedance spectroscopy characterizes the electrical properties of individual particles directly in the flow of water, allowing for simultaneous sizing and material identification. To demonstrate the technique, spike and recovery experiments were conducted in tap water with 212-1000 mu m polyethylene beads in six size ranges and a variety of similarly sized biological materials. Microplastics were reliably detected, sized, and differentiated from biological materials via their electrical properties at an average flow rate of 103 +/- 8 mL/min. The recovery rate was >= 90% for microplastics in the 300-1000 mu m size range, and the false positive rate for the misidentification of the biological material as plastic was 1%. Impedance spectroscopy allowed for the identification of microplastics directly in water without visual sorting or filtration, demonstrating its use for flow-through sensing.
引用
收藏
页码:238 / 244
页数:7
相关论文
共 50 条
  • [11] FLOW-THROUGH A SLOT
    PAPOUTSIPSYCHOUDAKI, S
    SUTTON, P
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 1995, 11 (01) : 21 - 33
  • [12] Impedance spectroscopy quantifies microplastics waste in waterways
    Dyatkin, Boris
    MRS BULLETIN, 2021, 46 (04) : 305 - 305
  • [13] ALTERNATIVES TO FLOW-THROUGH
    PARSONS, RB
    CIM BULLETIN, 1988, 81 (910): : 80 - 82
  • [14] FLOW-THROUGH ELECTROPHORESIS
    KINAWI, A
    HECKER, A
    JOURNAL OF CLINICAL CHEMISTRY AND CLINICAL BIOCHEMISTRY, 1985, 23 (07): : 411 - 419
  • [15] A FUTURE FOR FLOW-THROUGH
    PARSONS, RB
    CIM BULLETIN, 1987, 80 (907): : 78 - 80
  • [16] Quantification of biodegradable dissolved organic carbon in soil solution with flow-through bioreactors
    Yano, Y
    McDowell, WH
    Kinner, NE
    SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1998, 62 (06) : 1556 - 1564
  • [17] Effect of Microplastics on the Flow-Through Electro-Peroxone Process: A Computational Fluid Dynamics Simulation
    Yao, Jingjing
    Li, Dong-Sheng
    Qiu, Jianbei
    Xu, Xuhui
    Li, Haipu
    Yang, Hui Ying
    ACS ES&T WATER, 2024, 4 (09): : 3781 - 3788
  • [18] An automatic flow-through system for exploration of the human bioaccessibility of endocrine disrupting compounds from microplastics
    Sixto, Alexandra
    El-Morabit, Bilal
    Trujillo-Rodriguez, Maria Jose
    Carrasco-Correa, Enrique Javier
    Miro, Manuel
    ANALYST, 2021, 146 (12) : 3858 - 3870
  • [19] Detection of microplastics in water using electrical impedance spectroscopy and support vector machines
    Bifano, Luca
    Meiler, Valentin
    Peter, Ronny
    Fischerauer, Gerhard
    TM-TECHNISCHES MESSEN, 2023, 90 (06) : 374 - 386
  • [20] Plasmonic flow-through biosensor using a polymeric substrate
    Buchenauer, Andreas
    Bialon, Magdalena
    Segun, Daniel
    Puettmann, Christiane
    Stein, Christoph
    Barth, Stefan
    Schnakenberg, Uwe
    JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2014, 24 (03)