Multimodal optical detection and toxicity testing of microplastics in the environment

Microplastics are small plastic particles the size of less than 5 millimeters from cosmetics or results of abrasion and decomposition of plastic waste. The tremendous marine pollution by plastic particles and fibers and the increasing presence in the human environment from drinking water reservoirs to waste water demands for an environmental management and effective detection methods. The uptake of microplastics by living organisms may cause injuries of the gastrointestinal tract, trigger inflammation or cause cell toxicity by intrinsic particle properties or adsorbed pollutants. The urgent need for methods to identify microplastics in the environment, its sources of input and the risk of microplastic particles is the objective of the research project MicroPlastiCarrier. The project develops new tools for the optical detection and identification of microplastic particles from wastewater by a multiwavelength approach. The multiple labelfree optical toolbox is based on digital holographic microscopy using wavelengths from the visible to mid infrared. In order to monitor particle uptake minimally-invasively in living organisms and cellular specimens in a label-free manner, we applied high resolution optical coherence tomography (OCT) and multi-spectral digital holographic microscopy (DHM). In combination with microfluidics technologies as flow cytometry the project plans to identify particles based on size and their absorption and refraction index properties at several wavelengths. The technology should overcome the limitations of state of the art FT-IR.

[1]  Richard C. Thompson,et al.  Microplastics in the marine environment: a review of the methods used for identification and quantification. , 2012, Environmental science & technology.

[2]  Torkel Gissel Nielsen,et al.  A critical assessment of visual identification of marine microplastic using Raman spectroscopy for analysis improvement. , 2015, Marine pollution bulletin.

[3]  Patricia Burkhardt-Holm,et al.  Microplastics profile along the Rhine River , 2015, Scientific Reports.

[4]  A Cesar,et al.  Assessment of microplastic toxicity to embryonic development of the sea urchin Lytechinus variegatus (Echinodermata: Echinoidea). , 2015, Marine pollution bulletin.

[5]  Jong Chul Ye,et al.  Real-time Visualization of 3-d Dynamic Microscopic Objects Using Optical Diffraction Tomography References and Links , 2022 .

[6]  Susan Bengtson Nash,et al.  Uptake and Depuration Kinetics Influence Microplastic Bioaccumulation and Toxicity in Antarctic Krill ( Euphausia superba). , 2018, Environmental science & technology.

[7]  Steffi Ketelhut,et al.  Multi-spectral digital holographic microscopy for enhanced quantitative phase imaging of living cells , 2018, BiOS.

[8]  Wolfgang Drexler,et al.  Optical coherence tomography: Technology and applications , 2013, 2013 Conference on Lasers & Electro-Optics Europe & International Quantum Electronics Conference CLEO EUROPE/IQEC.

[9]  Steffi Ketelhut,et al.  Hyperspectral digital holographic microscopy approach for reduction of coherence induced disturbances in quantitative phase imaging of biological specimens , 2018, Speckle: International Conference on Speckle Metrology.

[10]  C. Wilcox,et al.  Plastic waste inputs from land into the ocean , 2015, Science.