Microalgae to bioplastics – Routes and challenges

IF 5.3 Q2 ENGINEERING, ENVIRONMENTAL
Sofia Chaudry , Valentina Hurtado-McCormick , Ka Yu Cheng , Anusuya Willis , Robert Speight , Anna H. Kaksonen
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Abstract

There is an increasing interest in the production of bioplastics from biomass-based feedstocks to address the challenges associated with increasing global plastic consumption. Bioplastics are produced mainly from 1st generation feedstocks that compete with food production for agricultural resources. Recently, microalgae have gained interest as a feedstock for bioplastics production. Microalgae can be used in various ways to produce different types of bioplastics including various biodegradable and drop-in bioplastics. However, not much attention has been paid to different routes of bioplastics production from microalgae. This review examines the potential of using microalgae as a feedstock for bioplastics, with a focus on three key polymer synthesis routes: 1) use of natural polymers synthesised by microalgae, 2) chemical synthesis of polymers from microalgae-derived feedstocks and 3) microbial synthesis of polymers from microalgae-derived feedstocks. The technical and economic challenges associated with each route are analysed. The optimal route of using microalgae as a feedstock for bioplastics largely depends on the economics of the process. Conducting comparable feasibility studies for various routes is recommended to identify the most economically viable route for utilising microalgae to produce bioplastics. Microalgae has great potential for the bioplastic industry, however, to progress the research to commercialisation, future research emphasis should be placed on investigating various routes of utilising microalgae for bioplastics along with optimising the process for enhanced biomass productivity and polymer yield, characterising the produced polymers, investigating the co-production of bioplastics with other products, and integrating the production of bioplastics with the wastewater treatment.

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从微藻类到生物塑料--途径与挑战
人们越来越关注利用生物基原料生产生物塑料,以应对全球塑料消费量不断增长所带来的挑战。生物塑料主要由与粮食生产争夺农业资源的第一代原料生产。最近,微藻作为生物塑料生产的一种原料引起了人们的兴趣。微藻类可用于生产不同类型的生物塑料,包括各种可生物降解的生物塑料和无须添加的生物塑料。然而,人们对利用微藻生产生物塑料的不同途径关注不多。本综述探讨了利用微藻作为生物塑料原料的潜力,重点关注三种关键的聚合物合成路线:1) 利用微藻合成的天然聚合物;2) 利用微藻原料化学合成聚合物;3) 利用微藻原料微生物合成聚合物。分析了与每种途径相关的技术和经济挑战。使用微藻作为生物塑料原料的最佳途径在很大程度上取决于工艺的经济性。建议对各种途径进行可比可行性研究,以确定利用微藻生产生物塑料的最经济可行的途径。微藻在生物塑料行业具有巨大的潜力,然而,为了将研究推向商业化,未来的研究重点应放在调查利用微藻生产生物塑料的各种途径,同时优化工艺以提高生物质生产率和聚合物产量,确定所生产聚合物的特性,调查生物塑料与其他产品的联合生产,以及将生物塑料的生产与废水处理相结合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cleaner Engineering and Technology
Cleaner Engineering and Technology Engineering-Engineering (miscellaneous)
CiteScore
9.80
自引率
0.00%
发文量
218
审稿时长
21 weeks
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