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Deep insights into biodegradability mechanism and growth cycle adaptability of polylactic acid/hyperbranched cellulose nanocrystal composite mulch

International Journal of Biological Macromolecules 2023 24 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Haibin Ji, Hou‐Yong Yu Haibin Ji, Haibin Ji, Haibin Ji, Somia Yassin Hussain Abdalkarim, Hou‐Yong Yu Hou‐Yong Yu Somia Yassin Hussain Abdalkarim, Somia Yassin Hussain Abdalkarim, Somia Yassin Hussain Abdalkarim, Somia Yassin Hussain Abdalkarim, Xiang Chen, Somia Yassin Hussain Abdalkarim, Hou‐Yong Yu Hou‐Yong Yu Somia Yassin Hussain Abdalkarim, Hou‐Yong Yu Hou‐Yong Yu Somia Yassin Hussain Abdalkarim, Xiang Chen, Xuefei Chen, Weidong Lu, Somia Yassin Hussain Abdalkarim, Xiang Chen, Hou‐Yong Yu Xiang Chen, Hou‐Yong Yu Zhiming Chen, Hou‐Yong Yu

Summary

Researchers developed biodegradable polylactic acid mulch films reinforced with hyperbranched cellulose nanocrystals, demonstrating tunable degradation rates under soil burial, seawater, and UV aging conditions alongside enhanced mechanical strength and crop yield — offering a viable petroleum-free alternative to conventional agricultural plastic mulch.

The widespread use of petroleum-based plastic mulch in agriculture has accelerated white and microplastic pollution while posing a severe agroecological challenge due to its difficulty in decomposing in the natural environment. However, endowing mulch film with degradability and growth cycle adaptation remains elusive due to the inherent non-degradability of petroleum-based plastics severely hindering its applications. This work reports polylactic acids hyperbranched composite mulch (PCP) and measured biodegradation behavior under burial soil, seawater, and ultraviolet (UV) aging to understand the biodegradation kinetics and to increase their sustainability in the agriculture field. Due to high interfacial interactions between polymer and nanofiler, the resultant PCP mulch significantly enhances crystallization ability, hydrophilicity, and mechanical properties. PCP mulch can be scalable-manufactured to exhibit modulated degradation performance under varying degradation conditions and periods while concurrently enhancing crop growth (wheat). Thus, such mulch with excellent performance can reduce labor costs and the environmental impact of waste mulch disposal to replace traditional mulch for sustainable agricultural production.

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