Biodegradable plastics from marine biomass: A solution to marine plastic pollution

IF 5.4 Q2 ENGINEERING, ENVIRONMENTAL
Nida Khan , K. Sudhakar , R. Mamat
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Abstract

The growing demand for plastics has raised environmental concerns due to their non-biodegradable nature. Sustainable solutions are urgently required to decrease plastic pollution. This study explored the potential of Sargassum wightii, a seaweed found in Malaysia, as a sustainable material for bioplastic films. The seaweed-based bioplastic was produced using an extraction-based method where alginate was formed using NaOH, followed by mixing sodium alginate with isopropanol and potato starch. The bioplastic was then characterized using various analytical techniques, including Thermogravimetric Analysis (TGA), Scanning Electron Microscopy (SEM), X-ray Diffraction (XRD), and Fourier-Transform Infrared (FTIR) spectroscopy. Physical properties such as density and moisture content, along with environmental tests like water absorption and biodegradability, were evaluated. TGA analysis indicated that 31.12 % of the sample remained as residue. FTIR spectroscopy identified the presence of bioactive compounds, with a prominent alcohol group peak at 3358cm-1. XRD analysis revealed a peak at 23.1°, indicating crystallinity within the sample. The moisture content of the bioplastic film was found to be 21.16 %. The water absorption test demonstrated the film's hydrophilic nature, showing a 60 % increase in weight. A soil burial test for biodegradability confirmed a 40 % reduction in weight over 21 days, indicating a reasonable degradation rate. These findings suggest that seaweed holds promise as an alternative raw material for bioplastic production, contributing to more sustainable materials and reducing reliance on non-biodegradable plastics.

Abstract Image

海洋生物可降解塑料:海洋塑料污染的解决方案
由于塑料的不可生物降解性,对塑料日益增长的需求引起了环境问题。我们迫切需要可持续的解决方案来减少塑料污染。这项研究探索了马尾藻(一种在马来西亚发现的海藻)作为生物塑料薄膜可持续材料的潜力。海藻基生物塑料的生产采用了一种基于提取的方法,其中用NaOH形成海藻酸盐,然后将海藻酸钠与异丙醇和马铃薯淀粉混合。然后使用各种分析技术对生物塑料进行表征,包括热重分析(TGA),扫描电子显微镜(SEM), x射线衍射(XRD)和傅里叶变换红外(FTIR)光谱。对密度和含水量等物理特性以及吸水性和可生物降解性等环境测试进行了评估。TGA分析表明,样品中残留31.12%。FTIR光谱鉴定了生物活性化合物的存在,在3358cm-1处有一个突出的醇基团峰。XRD分析发现在23.1°处有一个峰,表明样品内部结晶度较高。生物塑料薄膜的含水率为21.16%。吸水试验证明了薄膜的亲水性,重量增加了60%。生物降解性的土壤掩埋试验证实,在21天内重量减轻了40%,表明了合理的降解率。这些发现表明,海藻有望成为生物塑料生产的替代原料,有助于生产更可持续的材料,减少对不可生物降解塑料的依赖。
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来源期刊
Journal of hazardous materials advances
Journal of hazardous materials advances Environmental Engineering
CiteScore
4.80
自引率
0.00%
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审稿时长
50 days
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