马占峰,牛国强,芦珊.中国塑料加工业(2022)[J].中国塑料, 2023, 37(5):110-115.
|
LAW K L. Plastics in the marine environment[J]. Annual review of marine science, 2017, 9:205-229.
|
ROCHMAN C M, BROWNE M A, HALPERN B S, et al. Classify plastic waste as hazardous[J]. Nature, 2013, 494:169-171.
|
杨尚茹,魏群,马湘蒙.水环境中纳米塑料的检测和去除技术研究进展[J].三峡生态环境监测, 2021, 6(4):39-47.
YANG S R, WEI Q, MA X M. Detection and removal technology of nanoplastics in aquatic environment[J]. Ecology and environmental monitoring of Three Gorges, 2021, 6(4):39-47.
|
赵传靓,闫仪,苏俊堂,等.水体环境中纳米塑料的危害与检测研究进展[J].环境工程, 2019, 37(12):64-70.
ZHAO C L, YAN Y, SU J T, et al. Research progress on the harm and detection technologies of nanoplastics in aquatic environment[J]. Environmental engineering, 2019, 37(12):64-70.
|
赵杭美,由文辉,罗扬,等.滨岸缓冲带在河道生态修复中的应用研究[J].环境科学与技术, 2008, 31(4):116-122.
ZHAO H M, YOU W H, LUO Y, et al. Building riparian buffer for ecological restoration of river banks[J]. Environmental science&technology, 2008, 31(4):116-122.
|
MEYNS M, DIETZ F, WEINHOLD C S, et al. Multi-feature round silicon membrane filters enable fractionation and analysis of small micro-and nanoplastics with Raman spectroscopy and nano-FTIR[J]. Analytical methods, 2023, 15(5):606-617.
|
YU E S, JEONG E T, LEE S, et al. Real-time underwater nanoplastic detection beyond the diffusion limit and low Raman scattering cross-section via electro-photonic tweezers[J]. ACS nano, 2023, 17(3):2114-2123.
|
李珍,孙丽娜,王晓旭,等.基于热裂解气相色谱-质谱技术对农田土壤中纳米塑料的检测方法[J].环境化学, 2024, 43(3):885-894.
LI Z, SUN L N, WANG X X, et al. Detection method of nanoplastics in farmland soils by pyrolysis-gas chromatography-mass spectrometry[J]. Environmental chemistry, 2024, 43(3):885-894.
|
ZAKI M R M, ARIS A Z. An overview of the effects of nanoplastics on marine organisms[J]. Science of the total environment, 2022, 831:154757.
|
ZHOU X X, LIU R, HAO L T, et al. Identification of polystyrene nanoplastics using surface enhanced Raman spectroscopy[J]. Talanta, 2021, 221:121552.
|
GONÇALVES J M, BEBIANNO M J. Nanoplastics impact on marine biota:a review[J]. Environmental pollution, 2021, 273:116426.
|
LV L L, HE L, JIANG S Q, et al. In situ surface-enhanced Raman spectroscopy for detecting microplastics and nanoplastics in aquatic environments[J]. Science of the total environment, 2020, 728:138449.
|
DEL REAL A E P, MITRANO D M, CASTILLO-MICHEL H, et al. Assessing implications of nanoplastics exposure to plants with advanced nanometrology techniques[J]. Journal of hazardous materials, 2022, 430:128356.
|
ZHANG Y C, SU X T, TAM N F Y, et al. An insight into aggregation kinetics of polystyrene nanoplastics interaction with metal cations[J]. Chinese chemical letters, 2022, 33(12):5213-5217.
|
D[XCA.EPS,SQ][KG*4] BROWSKA A, MIELAN[DD (-2mm][HT6] '[HT5"][][DD)]CZUK M, SYCZEWSKI M. The Raman spectroscopy and SEM/EDS investigation of the primary sources of microplastics from cosmetics available in Poland[J]. Chemosphere, 2022, 308:136407.
|
LYU W, TENG H C, WU C C, et al. Anisotropic acoustic phonon polariton-enhanced infrared spectroscopy for single molecule detection[J]. Nanoscale, 2021, 13(29):12720-12726.
|
KÄPPLER A, FISCHER D, OBERBECKMANN S, et al. Analysis of environmental microplastics by vibrational microspectroscopy:FTIR, Raman or both?[J]. Analytical and bioanalytical chemistry, 2016, 408(29):8377-8391.
|
SOBHANI Z, ZHANG X, GIBSON C, et al. Identification and visualisation of microplastics/nanoplastics by Raman imaging (Ⅰ):down to 100 nm[J]. Water research, 2020, 174:115658.
|
CALDWELL J, TALADRIZ-BLANCO P, ROTHEN-RUTISHAUSER B, et al. Detection of sub-micro-and nanoplastic particles on gold nanoparticle-based substrates through surface-enhanced Raman scattering (SERS) spectroscopy[J]. Nanomaterials, 2021, 11(5):1149.
|
GILLIBERT R, BALAKRISHNAN G, DESHOULES Q, et al. Raman tweezers for small microplastics and nanoplastics identification in seawater[J]. Environmental science&technology, 2019, 53(15):9003-9013.
|
HERNANDEZ L M, XU E G, LARSSON H C E, et al. Plastic teabags release billions of microparticles and nanoparticles into tea[J]. Environmental science&technology, 2019, 53(21):12300-12310.
|
LIM D, JEONG J, SONG K S, et al. Inhalation toxicity of polystyrene micro (nano) plastics using modified OECD TG 412[J]. Chemosphere, 2021, 262:128330.
|
PEEZ N, JANISKA M C, IMHOF W. The first application of quantitative 1H NMR spectroscopy as a simple and fast method of identification and quantification of microplastic particles (PE, PET, and PS)[J]. Analytical and bioanalytical chemistry, 2019, 411(4):823-833.
|
CARR S A, LIU J, TESORO A G. Transport and fate of microplastic particles in wastewater treatment plants[J]. Water research, 2016, 91:174-182.
|
SHAN J J, ZHAO J B, ZHANG Y T, et al. Simple and rapid detection of microplastics in seawater using hyperspectral imaging technology[J]. Analytica chimica acta, 2019, 1050:161-168.
|
LI G, YANG Z R, PEI Z G, et al. Single-particle analysis of micro/nanoplastics by SEM-Raman technique[J]. Talanta, 2022, 249:123701.
|
MAST J, VERLEYSEN E, HODOROABA V D, et al. Chapter 2.1.2 characterization of nanomaterials by transmission electron microscopy:measurement procedures[J]. Characterization of nanoparticles, 2020:29-48.
|
LUO Y M, LI L Z, FENG Y D, et al. Quantitative tracing of uptake and transport of submicrometre plastics in crop plants using lanthanide chelates as a dual-functional tracer[J]. Nature nanotechnology, 2022, 17(4):424-431.
|
BITLER A, DOVER R S, SHAI Y. Fractal properties of cell surface structures:a view from AFM[J]. Seminars in cell&developmental biology, 2018, 73:64-70.
|
LUO H W, XIANG Y H, ZHAO Y Y, et al. Nanoscale infrared, thermal and mechanical properties of aged microplastics revealed by an atomic force microscopy coupled with infrared spectroscopy (AFM-IR) technique[J]. Science of the total environment, 2020, 744:140944.
|
FU W Y, MIN J C, JIANG W Y, et al. Separation, characterization and identification of microplastics and nanoplastics in the environment[J]. Science of the total environment, 2020, 721:137561.
|
MAGUIRE C M, RÖSSLEIN M, WICK P, et al. Characterisation of particles in solution-a perspective on light scattering and comparative technologies[J]. Science and technology of advanced materials, 2018, 19(1):732-745.
|
BATTISTINI B, PETRUCCI F, BOCCA B. In-house validation of AF4-MALS-UV for polystyrene nanoplastic analysis[J]. Analytical and bioanalytical chemistry, 2021, 413(11):3027-3039.
|
CHAMIEH J, LECLERCQ L, MARTIN M, et al. Limits in size of Taylor dispersion analysis:representation of the different hydrodynamic regimes and application to the size-characterization of cubosomes[J]. Analytical chemistry, 2017, 89(24):13487-13493.
|
RODRÍGUEZ CHIALANZA M, SIERRA I, PÉREZ PARADA A, et al. Identification and quantitation of semi-crystalline microplastics using image analysis and differential scanning calorimetry[J]. Environmental science and pollution research international, 2018, 25(17):16767-16775.
|
SULLIVAN G L, GALLARDO J D, JONES E W, et al. Detection of trace sub-micron (nano) plastics in water samples using pyrolysis-gas chromatography time of flight mass spectrometry (PY-GCToF)[J]. Chemosphere, 2020, 249:126179.
|
LIN Y, HUANG X, LIU Q, et al. Thermal fragmentation enhanced identification and quantification of polystyrene micro/nanoplastics in complex media[J]. Talanta, 2020, 208:120478.
|
MATERIĆ D, KASPER-GIEBL A, KAU D, et al. Micro-and nanoplastics in alpine snow:a new method for chemical identification and (semi) quantification in the nanogram range[J]. Environmental science&technology, 2020, 54(4):2353-2359.
|
JIMÉNEZ-LAMANA J, MARIGLIANO L, ALLOUCHE J, et al. A novel strategy for the detection and quantification of nanoplastics by single particle inductively coupled plasma mass spectrometry (ICP-MS)[J]. Analytical chemistry, 2020, 92(17):11664-11672.
|
KOVOCHICH M, LIONG M, PARKER J A, et al. Chemical mapping of tire and road wear particles for single particle analysis[J]. Science of the total environment, 2021, 757:144085.
|
JUNGNICKEL H, PUND R, TENTSCHERT J, et al. Time-of-flight secondary ion mass spectrometry (ToF-SIMS)-based analysis and imaging of polyethylene microplastics formation during sea surf simulation[J]. Science of the total environment, 2016, 563:261-266.
|
MITRANO D M, BELTZUNG A, FREHLAND S, et al. Synthesis of metal-doped nanoplastics and their utility to investigate fate and behaviour in complex environmental systems[J]. Nature nanotechnology, 2019, 14(4):362-368.
|
AL-SID-CHEIKH M, ROWLAND S J, STEVENSON K, et al. Uptake, whole-body distribution, and depuration of nanoplastics by the scallop Pecten maximus at environmentally realistic concentrations[J]. Environmental science&technology, 2018, 52(24):14480-14486.
|
WU X L, LYU X Y, LI Z Y, et al. Transport of polystyrene nanoplastics in natural soils:effect of soil properties, ionic strength and cation type[J]. Science of the total environment, 2020, 707:136065.
|
LU Y F, ZHANG Y, DENG Y F, et al. Uptake and accumulation of polystyrene microplastics in zebrafish (Danio rerio) and toxic effects in liver[J]. Environmental science&technology, 2016, 50(7):4054-4060.
|