Review of Techniques for the Detection, Removal, and Transformation of Environmental Microplastics and Nanoplastics

被引:4
作者
Li, Miao [1 ,2 ]
Zhao, Zhongxing [1 ]
Zhao, Zhenxia [1 ]
Li, Min [2 ]
机构
[1] Guangxi Univ, Sch Chem & Chem Engn, Sch Light Ind & Food Engn,Key Lab New Low Carbon G, Educ Dept Guangxi Zhuang Autonomous Reg,Guangxi Ke, Nanning 530004, Peoples R China
[2] Chinese Acad Sci, Inst High Energy Phys, CAS Key Lab Biomed Effects Nanomat & Nanosafety, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
microplastics; nanoplastics; detection; removal; environmental pollution; PLASMA-MASS SPECTROMETRY; METAL-ORGANIC FRAMEWORKS; WATER TREATMENT PLANTS; INFRARED-SPECTROSCOPY; ELECTRON-MICROSCOPY; RAMAN-SPECTROSCOPY; SEWAGE-TREATMENT; GREEN-ALGAE; IDENTIFICATION; PARTICLES;
D O I
10.1021/acsami.5c02306
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Plastic residues have emerged as a significant challenge in the environmental sector. Microplastics, which are plastic fragments smaller than 5 mm, have the ability to disperse through the atmosphere, oceans, and land, posing a serious threat to human health by accumulating in the food chain. However, their minuscule size makes it difficult to effectively remove them from the environment using the current technologies. This work provides a comprehensive overview of recent advancements in microplastic detection and removal technologies. For detection methods, we discuss commonly used techniques such as microscopic analysis, thermal analysis, mass spectrometry, spectroscopic analysis, and energy spectrometry. We also emphasize the importance of integrating various analytical and data-processing techniques to achieve efficient and nondestructive detection of microplastics. In terms of removal strategies, we explored innovative methods and technologies for extracting microplastics from the environment. These include physical techniques like filtration, adsorption, and magnetic separation; chemical techniques such as coagulation-flocculation-sedimentation and photocatalytic conversion; and bioseparation methods such as activated sludge and biodegradation. We also highlight the promising potential for converting microplastic contaminants into high-value chemicals. Additionally, we identify current technical challenges and suggest future research directions for the detection and removal of microplastics. We advocate for the development of unified and standardized analytical methods to guide further research on the removal and transformation of microplastics.
引用
收藏
页码:20560 / 20589
页数:30
相关论文
共 227 条
[91]   Time-of-flight secondary ion mass spectrometry (ToF-SIMS)-based analysis and imaging of polyethylene microplastics formation during sea surf simulation [J].
Jungnickel, H. ;
Pund, R. ;
Tentschert, J. ;
Reichardt, P. ;
Laux, P. ;
Harbach, H. ;
Luch, A. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2016, 563 :261-266
[92]   Comparison of μ-ATR-FTIR spectroscopy and py-GCMS as identification tools for microplastic particles and fibers isolated from river sediments [J].
Kaeppler, Andrea ;
Fischer, Marten ;
Scholz-Boettcher, Barbara M. ;
Oberbeckmann, Sonja ;
Labrenz, Matthias ;
Fischer, Dieter ;
Eichhorn, Klaus-Jochen ;
Voit, Brigitte .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2018, 410 (21) :5313-5327
[93]   Analysis of environmental microplastics by vibrational microspectroscopy: FTIR, Raman or both? [J].
Kaeppler, Andrea ;
Fischer, Dieter ;
Oberbeckmann, Sonja ;
Schernewski, Gerald ;
Labrenz, Matthias ;
Eichhorn, Klaus-Jochen ;
Voit, Brigitte .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2016, 408 (29) :8377-8391
[94]   Field measurements reveal exposure risk to microplastic ingestion by filter-feeding megafauna [J].
Kahane-Rapport, S. R. ;
Czapanskiy, M. F. ;
Fahlbusch, J. A. ;
Friedlaender, A. S. ;
Calambokidis, J. ;
Hazen, E. L. ;
Goldbogen, J. A. ;
Savoca, M. S. .
NATURE COMMUNICATIONS, 2022, 13 (01)
[95]   Preliminary Results From Detection of Microplastics in Liquid Samples Using Flow Cytometry [J].
Kaile, Namrata ;
Lindivat, Mathilde ;
Elio, Javier ;
Thuestad, Gunnar ;
Crowley, Quentin G. ;
Hoell, Ingunn Alne .
FRONTIERS IN MARINE SCIENCE, 2020, 7
[96]   Toward the development of polyethylene photocatalytic degradation [J].
Kamalian, Parisa ;
Khorasani, Saied Nouri ;
Abdolmaleki, Amir ;
Karevan, Mehdi ;
Khalili, Shahla ;
Shirani, Mohammad ;
Neisiany, Rasoul Esmaeely .
JOURNAL OF POLYMER ENGINEERING, 2020, 40 (02) :181-191
[97]   Modification of a Nile Red Staining Method for Microplastics Analysis: A Nile Red Plate Method [J].
Kang, Heejun ;
Park, Saerom ;
Lee, Bokjin ;
Ahn, Jaehwan ;
Kim, Seogku .
WATER, 2020, 12 (11)
[98]   Fluorescent Dyes for Visualizing Microplastic Particles and Fibers in Laboratory-Based Studies [J].
Karakolis, Evan G. ;
Nguyen, Brian ;
You, Jae Bem ;
Rochman, Chelsea M. ;
Sinton, David .
ENVIRONMENTAL SCIENCE & TECHNOLOGY LETTERS, 2019, 6 (06) :334-340
[99]   Micro/nanoplastics: Critical review of their impacts on plants, interactions with other contaminants (antibiotics, heavy metals, and polycyclic aromatic hydrocarbons), and management strategies [J].
Khan, Ali Raza ;
Ulhassan, Zaid ;
Li, Guanlin ;
Lou, Jiabao ;
Iqbal, Babar ;
Salam, Abdul ;
Azhar, Wardah ;
Batool, Sundas ;
Zhao, Tingting ;
Li, Kexin ;
Zhang, Qiuyue ;
Zhao, Xin ;
Du, Daolin .
SCIENCE OF THE TOTAL ENVIRONMENT, 2024, 912
[100]   Chemical mapping of tire and road wear particles for single particle analysis [J].
Kovochich, Michael ;
Liong, Monty ;
Parker, Jillian A. ;
Oh, Su Cheun ;
Lee, Jessica P. ;
Xi, Luan ;
Kreider, Marisa L. ;
Unice, Kenneth M. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 757