0
Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Detection Methods Remediation Sign in to save

Concise, Rapid, and Comprehensive Approach for Microplastic Detection Based on Ambient Microwave Plasma Torch Desorption/Ionization Mass Spectrometry

Analytical Chemistry 2025 2 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 48 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Qing Li, Weiwei Chen, Fengjian Chu, Jing Luo, Hongru Feng, Yuanjiang Pan

Summary

Researchers developed an ambient microwave plasma torch ionization mass spectrometry method for rapid microplastic identification that requires minimal sample pretreatment and produces intuitive mass spectra. Each analysis takes approximately 30 seconds and is not limited by MP size, with the method validated for multiple common polymer types.

Microplastics (MPs) have been universally recognized as a pervasive and enduring environmental hazard, promoting research on relevant analytical techniques. Despite the unique advantages of mass spectrometry (MS) for polymer identification, lengthy procedures and complex data processing are always ineluctable. In this study, an ambient microwave plasma torch (MPT) ion source coupled with an LTQ Orbitrap MS was developed, presenting a rapid and concise analytical approach for MPs with simplified pretreatment and intuitive mass spectra. One testing process took approximately 30 s, enabling a higher efficiency of analysis. Furthermore, the method was not constrained by the MP size limitation; even macroscale polymer blocks could be detected. Under the optimized conditions, the method was proven to be efficient for the desorption and ionization of a wide range of MPs (polyamide, poly(ethylene terephthalate), polymethacrylate, polylactic acid, poly(3-hydroxybutyrate), polypropylene, and polythene), while the distinctly decipherable spectra intuitively reflected the mass intervals conforming to the corresponding monomer of MPs. Linear relationships were established between sample mass and the intensity of characteristic ion, with R2 exceeding 0.98. Additionally, a simplified pretreatment process in conjunction with MPT-MS was explored, verifying the method's resilience to matrix interferences and its applicability to environmental sample analysis. Furthermore, the compatibility of the established method with scanning electron microscopy was taken into consideration, thereby complementing traditional MS analysis by providing additional insights into the size and morphology of MPs. This study employed MPT as the ion source for MS detection of MPs, establishing a concise, rapid, and comprehensive method specifically targeting the analysis of MPs, which provided inspiration for the extraction and characterization of MPs in environmental samples.

Sign in to start a discussion.

More Papers Like This

Article Tier 2

Rapid Monitoring Approach for Microplastics Using Portable Pyrolysis-Mass Spectrometry

Researchers developed a rapid monitoring method for microplastics using a portable pyrolysis-mass spectrometry system that can identify polymer types and quantify particles smaller than 5 mm in the field without lengthy laboratory preparation. The approach offers a promising tool for fast, on-site microplastic surveillance in environmental samples.

Article Tier 2

Fast identification of microplastics in complex environmental samples by a thermal degradation method

Researchers developed a fast identification method for microplastics in complex environmental samples using thermal analysis, offering a high-throughput alternative to spectroscopic techniques for polymer identification.

Article Tier 2

Rapid Single Particle Atmospheric Solids Analysis Probe-Mass Spectrometry for Multimodal Analysis of Microplastics

Researchers developed an atmospheric solid analysis probe coupled to mass spectrometry for rapid chemical characterization of single microplastic particles, enabling polymer identification while remaining compatible with complementary imaging techniques for comprehensive microplastic analysis.

Article Tier 2

Rapid and efficient method for assessing nanoplastics by an electromagnetic heating pyrolysis mass spectrometry

Researchers developed an electromagnetic heating pyrolysis mass spectrometry method for rapid nanoplastic characterization, demonstrating fast polymer identification and quantification at low concentrations in complex environmental samples compared to conventional thermal analysis.

Article Tier 2

Microwave-Assisted Extraction for Quantification of Microplastics Using Pyrolysis–Gas Chromatography/Mass Spectrometry

Researchers developed a microwave-assisted extraction method combined with pyrolysis-gas chromatography/mass spectrometry (Py-GC/MS) for quantifying microplastics in environmental matrices, improving extraction efficiency and analytical accuracy.

Share this paper