Department of Chemistry, McGill University, Montreal, Quebec H3A 0B8, Canada.
Department of Atmospheric and Oceanic Sciences, McGill University, Montreal, Quebec H3A 0B9,Canada.
Environ Sci Technol. 2024 May 21;58(20):8919-8931. doi: 10.1021/acs.est.3c10408. Epub 2024 May 6.
For the first time, we present a much-needed technology for the in situ and real-time detection of nanoplastics in aquatic systems. We show an artificial intelligence-assisted nanodigital in-line holographic microscopy (AI-assisted nano-DIHM) that automatically classifies nano- and microplastics simultaneously from nonplastic particles within milliseconds in stationary and dynamic natural waters, without sample preparation. AI-assisted nano-DIHM identifies 2 and 1% of waterborne particles as nano/microplastics in Lake Ontario and the Saint Lawrence River, respectively. Nano-DIHM provides physicochemical properties of single particles or clusters of nano/microplastics, including size, shape, optical phase, perimeter, surface area, roughness, and edge gradient. It distinguishes nano/microplastics from mixtures of organics, inorganics, biological particles, and coated heterogeneous clusters. This technology allows 4D tracking and 3D structural and spatial study of waterborne nano/microplastics. Independent transmission electron microscopy, mass spectrometry, and nanoparticle tracking analysis validates nano-DIHM data. Complementary modeling demonstrates nano- and microplastics have significantly distinct distribution patterns in water, which affect their transport and fate, rendering nano-DIHM a powerful tool for accurate nano/microplastic life-cycle analysis and hotspot remediation.
我们首次提出了一种在原位实时检测水系统中纳米塑料的急需技术。我们展示了一种人工智能辅助的纳米数字在线全息显微镜(AI 辅助纳米-DIHM),它可以在毫秒内自动对静止和动态天然水中的非塑料颗粒进行纳米和微塑料的分类,而无需样品制备。AI 辅助纳米-DIHM 在安大略湖和圣劳伦斯河分别识别出 2%和 1%的水载颗粒为纳米/微塑料。纳米-DIHM 提供了单个颗粒或纳米/微塑料簇的物理化学性质,包括尺寸、形状、光学相、周长、表面积、粗糙度和边缘梯度。它可以将纳米/微塑料与有机物、无机物、生物颗粒和涂覆的异质簇区分开来。该技术允许对水载纳米/微塑料进行 4D 跟踪和 3D 结构和空间研究。独立的透射电子显微镜、质谱和纳米颗粒跟踪分析验证了纳米-DIHM 数据。补充模型表明,纳米和微塑料在水中具有明显不同的分布模式,这影响了它们的迁移和归宿,使纳米-DIHM 成为准确分析纳米/微塑料生命周期和热点修复的有力工具。