The path of plastic in the oceans

environmentmarine conservationoceanunderwater ecosystemmicroplastics
Biofilm formed by bacteria and microalgae on a plastic surface in water from the Kiel Fjord. The image was taken using confocal laser scanning microscopy, photo: © Jan Michels / Future Ocean

Microplastic connects to naturally occurring particles and forms aggregates Although vast amounts of plastic are drifting in the oceans and new microplastics are constantly being released into the oceans, the concentrations of microplastic in the surface layer are lower than expected. Researchers from the GEOMAR Helmholtz Center for Ocean Research Kiel, the Kiel Cluster of Excellence "Ocean of the Future" and the Helmholtz Center Geesthacht have now shown that microplastics in seawater interact with naturally occurring particles and form so-called aggregates. This aggregate formation could explain how microplastic sinks from the surface into deeper water layers. The oceans contain a large number of particles of biological origin, including, for example, living and dead plankton organisms and their faecal material. These so-called biogenic particles interact with each other and often form lumps that sink into deeper layers of water or are scientifically correct: aggregates. In addition to the natural particles, a large amount of plastic particles less than five millimetres in size, ie microplastics, has been in the oceans for some time. Although new microplastics are currently being released into the oceans and some plastic species are of relatively low density and therefore drift on the surface of the water, the concentrations on the surface of the oceans are often lower than expected. In addition, several microplastics have been found in deep-sea sediments in recent years. What happens to the microplastic in the surface layer? How does it get into great water depths? " Our hypothesis was that microplastics together with the biogenic particles form aggregates in the seawater, where it may then sink into deeper water layers, " explains Dr. Jan Michels, member of the Cluster of Excellence "Ocean of the Future" and lead author of the study, recently published in the international journal Proceedings of the Royal Society B. To test this hypothesis, researchers conducted laboratory experiments using 700 to 900 micron polystyrene beads. They compared the behaviour of the beads in the presence or absence of biogenic particles. The experiments provided a clear result: " The presence of biogenic particles was crucial for aggregate formation. While microplastic particles alone aggregated only slightly, together with biogenic particles they formed quite distinct and stable aggregates within a few days ", explains Prof. Dr. med. Anja Engel vom GEOMAR. After twelve days, on average, 73 percent of the microplastics were in aggregates. "In addition, we hypothesized that biofilms on the surface of the microplastic play a role in aggregate formation," explains Michels. Such biofilms are formed by microorganisms, especially bacteria and unicellular algae, and are relatively sticky. To investigate their impact on aggregation, comparative experiments were performed with purified plastic beads and those coated with a biofilm. "The microplastic covered by a biofilm together with biogenic particles formed first aggregates within a few hours, much earlier and faster than the microplastic purified at the beginning of the experiments," Michels describes. On average, 91 percent of the biofilm-coated microplastics were integrated into the aggregates after three days. If microplastics are covered with a biofilm and at the same time biogenic particles are present, stable aggregates of microplastics and biogenic particles form very quickly in the laboratory, " Michels sums up. In many regions of the oceans, the presence of numerous biogenic particles and biofilms on the microplastic is probably a typical situation. " Therefore, there are many indications that the aggregation processes that we have observed in our laboratory experiments also take place in the oceans and have a great influence on the transport and distribution of microplastics, " explains Prof. Dr. med. Kai Wirtz from the Helmholtz Center Geesthacht. Link to the study: http://dx.doi.org/10.1098/rspb.2018.1203

Dr. Jan Michels led the investigations, photo: © Jolan Kieschke / Future Ocean.
Photographs of typical aggregates made of plastic globules and biogenic particles that were generated during laboratory experiments, Photo: © Jan Michels / Future Ocean

Bài viết này được dịch tự động và có thể chứa một số lỗi nhỏ; vui lòng tham khảo bản gốc tiếng Anh nếu có thắc mắc.

Xem thêm

Foggs
Swimming Drills: 10 Beginner Exercises to Build Confidence
AI KB

Các bài tập bơi: 10 bài tập dành cho người mới bắt đầu để xây dựng sự tự tin

Thực hành 10 bài tập bơi dành cho người mới bắt đầu để cải thiện kỹ năng thở, nổi, đạp chân, kỹ thuật bơi tự do và sự tự tin trong nước.

Hôm nay
Shutterstock-Andrea_Izzotti
Mermaid Swimming: 10 Unmissable Spots for 2026
AI KB

Bơi kiểu người cá: 10 địa điểm không thể bỏ qua trong năm 2026

Khám phá 10 điểm bơi lội như Người cá cho năm 2026, từ các hồ bơi ấm áp đến các vịnh được bảo vệ, kèm theo thông tin chi tiết về cách tiếp cận, lời khuyên an toàn và cảm hứng du lịch.

2 ngày trước
Shutterstock-Stas-Moroz
Conservation Success Stories: 10 Inspiring Comebacks
AI KB

Câu chuyện thành công về bảo tồn: 10 câu chuyện trở lại đầy cảm hứng

Khám phá 10 câu chuyện thành công về bảo tồn, minh họa cách các CORAL REEF, động vật hoang dã, vùng đất ngập nước và cộng đồng có thể phục hồi thông qua các hoạt động bảo vệ và phục hồi.

4 ngày trước
Apeks
Scuba Diving Near Me: Find Local Dive Spots and Centers
AI KB

Lặn bình khí gần tôi: Tìm các DIVE SPOT và trung tâm lặn địa phương

Tìm kiếm “Lặn bình khí gần tôi” để khám phá các trung tâm lặn địa phương, hồ nước, mỏ đá, điểm lặn ven biển, mẹo theo mùa và các khóa đào tạo SSI gần nơi bạn ở.

5 ngày trước
Shutterstock-Dudarev-Mikhail
Freediving Without Fins: Technique, Training and Records
AI KB

Lặn tự do Không chân vịt (No-Fins Freediving): Kỹ thuật, Huấn luyện và Kỷ lục

Khám phá lặn tự do Không chân vịt, cách thức hoạt động của phương pháp Constant Weight No Fins (CNF), cùng các kỹ thuật, chương trình huấn luyện, kỷ lục, lợi ích và các quy tắc an toàn đằng sau CNF.

7 ngày trước