Microplastics Generation: Onset of Fragmentation of Polyethylene Films in Marine Environment Mesocosms
Образование микропластика: начало фрагментации полиэтиленовых пленок в мезокосмах морской среды
2017-03-27
SCID: 54.1/cwkh4z7c
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FTIR spectroscopyHDPE weatheringmarine environment mesocosmsmicroplastics generationpolyethylene film fragmentation
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Abstract (AI)
The fragmentation of high-density polyethylene (HDPE) films from single-use supermarket plastic bags to microplastics under laboratory-simulated onshore and nearshore conditions was investigated for a period of 6 months. The weathering process of the plastic strips either on beach sand or in seawater under direct natural sunlight was monitored by tensile strength, molecular weight measurements, FTIR, weight loss and image processing of photographs of the plastic strips before and after mild mechanical stress was applied. The latter represents a novel method proposed for determining the onset of fragmentation through the application of mild mechanical stress on the weathered plastic samples emulating the action of sand and wind on a beach. It was found that 12 h of application of mild mechanical stress in rotating glass bottles filled partially with sand was sufficient time to reach the maximum degree of fragmentation that could occur for the weathered plastics samples being tested. For example, applied mechanical stress yielded an area loss of almost 14% for samples weathered for a period of 5 months and about 16.7% after 5.5 months. While tensile strength tests and molecular weight measurements were rather inconclusive till the very last month when the onset of fragmentation was identified; FTIR measurements revealed that samples under ultraviolet irradiation were gradually modified chemically until fragmentation commenced. After 6 months of weathering, molecular weight measurements showed a 60% reduction for sample SMB-1 whereas for sample SMB-2 the measurement was not possible due to extensive fragmentation. The onset of fragmentation for SMB-1 and SMB-2 samples occurred at a cumulative luminance of 5.3x106 lux•d and in the presence of atmospheric oxygen whereby the polymer films broke down partially to microplastics. When the UV exposure reached 7.2x106 lux•d the weathered plastic strips broke down fully to microplastics with the application of a mild mechanical stress. Samples placed in seawater proved to be resistant to fragmentation compared to those on sand over the six-month period of the weathering experiment. The direct implication of this work is that beached macroplastic debris should be regularly collected from the seashore before they are weathered by sunlight and returned to the
Key Findings
1
A mild mechanical-stress test using partially sand-filled rotating bottles was proposed to identify the onset of HDPE film fragmentation into microplastics.
2
After six months, molecular weight decreased by 60% in sample SMB-1; SMB-2 could not be measured because of extensive fragmentation.
3
FTIR detected gradual ultraviolet-induced chemical modification before fragmentation, whereas tensile-strength and molecular-weight measurements remained largely inconclusive until the final month.
4
Fragmentation began at a cumulative luminance of 5.3×10^6 lux·d in the presence of atmospheric oxygen, while exposure reaching 7.2×10^6 lux·d caused complete breakdown into microplastics under mild mechanical stress.
5
Twelve hours of mild mechanical stress produced the maximum observed fragmentation of weathered samples, including area losses of nearly 14% after five months and 16.7% after 5.5 months.
Research Object
High-density polyethylene (HDPE) films from single-use supermarket plastic bags weathered in simulated onshore and nearshore marine environments
Research Subject
The onset and progression of weathering-induced fragmentation of HDPE films into microplastics under ultraviolet irradiation, atmospheric oxygen, and mild mechanical stress
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2017-03-27
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