Marine Biopolymers & Advanced Bioactive Materials Research Lab, Department of Prosthodontics, Saveetha Dental College and Hospitals, Saveetha Institute of Medical and Technical Sciences (SIMATS), Saveetha University, Chennai, 600 077, Tamil Nadu, India; Marine Biotechnology Division, Ocean Science and Technology for Islands, National Institute of Ocean Technology, Ministry of Earth Sciences, Govt. of India, Pallikaranai, Chennai, 600100, Tamil Nadu, India.
Coastal Algae Cultivation, Microbial Biofuels & Biochemicals, Advanced Biofuels Division, The Energy and Resources Institute, Navi Mumbai, 400 708, India.
Environ Res. 2024 Jan 1;240(Pt 2):117465. doi: 10.1016/j.envres.2023.117465. Epub 2023 Oct 23.
Plastic disposal and their degraded products in the environment are global concern due to its adverse effects and persistence in nature. To overcome plastic pollution and its impacts on environment, a sustainable bioplastic production using renewable feedstock's, such as algae, are envisioned. In this review, the production of polymer precursors such as polylactic acid, polyhydroxybutyrates, polyhydroxyalkanoates, agar, carrageenan and alginate from microalgae and macroalgae through direct conversion and fermentation routes are summarized and discussed. The direct conversion of algal biopolymers without any bioprocess (whole algal biomass used emphasizing zero waste discharge concept) favours economic feasibility. Whereas indirect method uses conversion of algal polymers to monomers after pretreatment followed by bioplastic precursor production by fermentation are emphasized. This review paper also outlines the current state of technological developments in the field of algae-based bioplastic, both in industry and in research, and highlights the creation of novel solutions for green bioplastic production employing algal polymers. Finally, the cost economics of the bioplastic production using algal biopolymers are clearly mentioned with future directions of next level bioplastic production. In this review study, the cost estimation was given at laboratory level bioplastic production using casting methods. Further development of bioplastics at pilot scale level may give clear economic feasibility of production at industry. Here, in this review, we emphasized the overview of algal biopolymers for different bioplastic product development and its economic value and also current industries involved in bioplastic production.
由于塑料在环境中的处置及其降解产物所带来的负面影响及其在自然界中的持久性,它们已经成为全球性的关注点。为了克服塑料污染及其对环境的影响,人们期望利用可再生原料(如藻类)来生产可持续的生物塑料。在这篇综述中,总结和讨论了通过直接转化和发酵途径,从微藻和巨藻生产聚合物前体,如聚乳酸、聚羟基丁酸酯、聚羟基烷酸酯、琼脂、卡拉胶和藻酸盐。直接转化藻类生物聚合物而不经过任何生物过程(使用整个藻类生物质,强调零废物排放概念)有利于经济可行性。而间接方法则是在预处理后将藻类聚合物转化为单体,然后通过发酵生产生物塑料前体。本文还概述了藻类基生物塑料领域的技术发展现状,包括工业和研究领域,并强调了利用藻类聚合物开发绿色生物塑料的新解决方案。最后,还明确提到了利用藻类生物聚合物生产生物塑料的成本经济性,并指出了未来的发展方向。在这项综述研究中,使用浇铸法在实验室水平上对生物塑料的成本进行了估算。在中试规模上进一步开发生物塑料可能会使工业生产具有明显的经济可行性。在这篇综述中,我们强调了藻类生物聚合物在不同生物塑料产品开发中的概述及其经济价值,以及目前参与生物塑料生产的行业。