Global Centre for Environmental Remediation (GCER), University of Newcastle, Callaghan, NSW, 2308, Australia; Cooperative Research Centre for Contamination Assessment and Remediation of the Environment (CRC CARE), University of Newcastle, Callaghan, NSW, 2308, Australia.
Global Centre for Environmental Remediation (GCER), University of Newcastle, Callaghan, NSW, 2308, Australia.
Environ Pollut. 2022 Apr 1;298:118857. doi: 10.1016/j.envpol.2022.118857. Epub 2022 Jan 13.
The characterisation of nanoplastics is much more difficult than that of microplastics. Herewith we employ Raman imaging to capture and visualise nanoplastics and microplastics, due to the increased signal-noise ratio from Raman spectrum matrix when compared with that from a single spectrum. The images mapping multiple characteristic peaks can be merged into one using logic-based algorithm, in order to cross-check these images and to further increase the signal-noise ratio. We demonstrate how to capture and identify microplastics, and then zoom down gradually to visualise nanoplastics, in order to avoid the shielding effect of the microplastics to shadow and obscure the nanoplastics. We also carefully compare the advantages and disadvantages of Raman imaging, while giving recommendations for improvement. We validate our approach to capture the microplastics and nanoplastics as particles released when we cut and assemble PVC pipes in our garden. We estimate that, during a cutting process of the PVC pipe, thousands of microplastics in the range of 0.1-5 mm can be released, along with millions of small microplastics in the range of 1-100 μm, and billions of nanoplastics in the range of <1 μm. Overall, Raman imaging can effectively capture microplastics and nanoplastics.
纳米塑料的特征化比微塑料困难得多。在这里,我们采用 Raman 成像技术来捕获和可视化纳米塑料和微塑料,因为与单个光谱相比,Raman 光谱矩阵的信号噪声比增加了。可以使用基于逻辑的算法将映射多个特征峰的图像合并为一个,以便交叉检查这些图像并进一步提高信号噪声比。我们演示了如何捕获和识别微塑料,然后逐渐缩小范围以可视化纳米塑料,以避免微塑料的屏蔽效应遮挡和模糊纳米塑料。我们还仔细比较了 Raman 成像的优缺点,并提出了改进建议。我们验证了我们的方法来捕获微塑料和纳米塑料,这些塑料是我们在花园里切割和组装 PVC 管道时释放的颗粒。我们估计,在切割 PVC 管道的过程中,可能会释放出数千个 0.1-5 毫米范围内的微塑料,以及数百万个 1-100 微米范围内的小微塑料,以及数十亿个小于 1 微米的纳米塑料。总的来说,Raman 成像可以有效地捕获微塑料和纳米塑料。