Schick Simon, Heindel Julia, Groten Robert, Seide Gunnar H
Aachen-Maastricht Institute for Biobased Materials (AMIBM), Faculty of Science and Engineering, Maastricht University, Brightlands Chemelot Campus, Urmonderbaan 22, 6167 RD Geleen, The Netherlands.
Department of Business Administration, University of Applied Sciences Munich, Lothstrasse 34, 80335 Munich, Germany.
Polymers (Basel). 2024 Dec 16;16(24):3498. doi: 10.3390/polym16243498.
Biopolymers are promising sustainable alternatives to petrochemical polymers, but the recent increase in published research articles has not translated into marketable products. Here, we discuss barriers to market entry by exploring application-specific, ecological, and economic aspects, such as the utilization of biodegradable polymers to mitigate the accumulation of microplastics. We summarize previous studies revealing how fiber surface properties and the dwell time during fiber spinning affect degradability. We show how biopolymers can be processed on existing machines and how degradability can be tailored by changing process parameters. This novel approach, known as degradation by design, will allow us to rethink product development and ensure that biopolymers are not only able to replace petrochemical polymers but also reduce the environmental harm they cause.
生物聚合物是石化聚合物有前景的可持续替代品,但最近发表的研究文章数量增加并未转化为可销售的产品。在此,我们通过探讨特定应用、生态和经济方面,如利用可生物降解聚合物减少微塑料积累,来讨论市场进入的障碍。我们总结了先前的研究,揭示了纤维表面特性和纤维纺丝过程中的停留时间如何影响降解性。我们展示了生物聚合物如何在现有机器上进行加工,以及如何通过改变工艺参数来定制降解性。这种被称为“设计降解”的新方法将使我们重新思考产品开发,并确保生物聚合物不仅能够替代石化聚合物,还能减少它们造成的环境危害。