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Updated: May 9, 2026

Aerobic Biodegradation Testing of Materials Using a Natural Marine Seawater Inoculum and Closed Loop Respirometer
Published on: October 24, 2025
Biodegradation and Surface Reconfiguration Triggered the Adsorption-Desorption of Phenanthrene on Biodegradable
Xiaotao Liu1,2, Yuexia Feng1,3, Jian Lu1,3
1Yantai Institute of Coastal Zone Research (YIC), Chinese Academy of Sciences (CAS), Yantai, Shandong 264003, P.R. China.
Abstract:
The virgin polylactic acid (V-PLA) microplastics did not adsorb phenanthrene (PHE), while the adsorption capacity of 36-month bioaged PLA microplastics (BA-PLA36M) increased to 94.5 μg g-1 for PHE, a common organic pollutant in marine environments. The adsorption capacity for PHE increased to 102 μg g-1 after the removal of the surficial biofilm from the BA-PLA36M, indicating that the bioaged surface, but not the biofilm of PLA microplastics, served as the predominant driver affecting the interfacial performance of organic pollutants. The maximum adsorption of PHE on BA-PLA36M reached 259.7 μg g-1 at pH 7.0, and high salinity could sharply decrease the PHE adsorption capacity of BA-PLA36M microplastics (26.8 μg g-1). Compared with the V-PLA, long-term biodegradation of BA-PLA36M in seawater led to porous surface structures with increased specific surface area and -C═O and -OH contents on the surface of PLA microplastics. Density functional theory calculation and molecular dynamics simulation indicated that bioaging could trigger the initial adsorption of a small amount of PHE, and the adsorbed PHE induced in situ surface reconfiguration of the BA-PLA36M surface to further promote PHE adsorption. The biodegradation coupled with in situ surface reconfiguration caused by preadsorption triggered the adsorption-desorption of PHE on biodegradable microplastics.
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