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富含甘蔗酒糟的魔芋葡甘聚糖/海藻酸钠薄膜的物理化学性质及其在覆盖应用中的研究。

Physicochemical properties of konjac glucomannan/alginate films enriched with sugarcane vinasse intended for mulching applications.

机构信息

Center of Agricultural Sciences, Federal University of São Carlos, Rodovia Anhanguera, km 174, 13600-970 Araras, SP, Brazil.

School of Chemical Engineering, University of Campinas, Av. Albert Einstein 500, 13083-852 Campinas, SP, Brazil.

出版信息

Int J Biol Macromol. 2020 Dec 15;165(Pt B):1717-1726. doi: 10.1016/j.ijbiomac.2020.10.049. Epub 2020 Oct 15.

DOI:10.1016/j.ijbiomac.2020.10.049
PMID:33069823
Abstract

Biodegradable films are a promising strategy to reduce the environmental impact caused by conventional plastics commonly used in agriculture. This study focused on the production and characterization of Konjac glucomannan (KGM) and alginate (ALG) based films enriched with sugarcane vinasse (VIN), a nutrient-rich wastewater generated in large volumes by the sugar-ethanol producing industries. ALG, KGM and ALG/KGM blended (50:50) films were produced by casting and treated with calcium ions (Ca) (ALG films) and a combination of Ca, alkali, and ethanol (KGM and ALG/KGM films). Vinasse addition tended to reduce transparency and water resistance of the films and had less effect on their mechanical properties. Crosslinking of ALG films resulted in enhanced mechanical properties and reduced moisture content, water solubility, swelling, water vapor permeability, and flexibility. KGM films were less impacted by crosslinking/deacetylation but showed improved water resistance while maintain a high degree of swelling (290% and 185% for KGM and KGM/VIN films respectively). Blended films exhibited characteristic properties of the two biopolymers and adequate compatibility indicated by Fourier transform infrared spectroscopy (FTIR) and morphologies. Vinasse-added ALG/KGM films represent a novel nutrient-enriched, bio-based material for agricultural applications and could help to face the environmental challenges imposed by vinasse disposal.

摘要

可生物降解薄膜是一种很有前途的策略,可以减少农业中常用的传统塑料对环境造成的影响。本研究专注于生产和特性研究,以甘蔗废糟液(VIN)为原料,生产富含营养的废水,由制糖和乙醇生产行业大量产生,对魔芋葡甘聚糖(KGM)和藻酸盐(ALG)薄膜进行增塑。ALG、KGM 和 ALG/KGM(50:50)混合薄膜通过铸造法生产,并通过钙离子(ALG 薄膜)和钙离子、碱和乙醇的组合(KGM 和 ALG/KGM 薄膜)进行处理。废糟液的添加往往会降低薄膜的透明度和耐水性,对其机械性能的影响较小。ALG 薄膜的交联作用提高了机械性能,降低了水分含量、水溶性、溶胀性、水蒸气透过率和柔韧性。KGM 薄膜交联/脱乙酰化的影响较小,但耐水性提高,同时保持高溶胀度(KGM 和 KGM/VIN 薄膜分别为 290%和 185%)。共混薄膜表现出两种生物聚合物的特性,傅里叶变换红外光谱(FTIR)和形貌表明具有良好的相容性。添加废糟液的 ALG/KGM 薄膜是一种新型的富营养、基于生物的农业应用材料,可以帮助应对废糟液处理带来的环境挑战。

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