Hammi Nisrine, Wrońska Natalia, Katir Nadia, Lisowska Katarzyna, Marcotte Nathalie, Cacciaguerra Thomas, Bryszewska Maria, El Kadib Abdelkrim
Euromed Research Center, Engineering Division, Euro-Med University of Fes (UEMF), Route de Meknes, Rond-Point de Bensouda, Fès 30070, Morocco.
Department of Industrial Microbiology and Biotechnology, Faculty of Biology and Environmental Protection, University of Lodz, Banacha 12/16, Lodz 90-236, Poland.
ACS Appl Bio Mater. 2019 Jan 22;2(1):61-69. doi: 10.1021/acsabm.8b00306. Epub 2018 Dec 10.
Aside from their economical cost and resource depletion, petroleum-based plastics generate annually a substantial amount of waste with a negative and extremely alarming impact on the environment and public health. Consequently, rising interest was devoted to search for biobased materials to find sustainable alternatives. Herein, we report a new and straightforward method to incorporate endogenous nano-objects (exemplified herein by metal oxide clusters) within polysaccharide-based films. Supramolecular chemistry based on polysaccharide self-assembly associated with the sol-gel polymerization allowed converting soluble chitosan and metal alkoxide precursors to nanostructured chitosan-clustered metal oxide films. A broad range of discrete single, binary, and ternary mixed metal oxides was successfully incorporated in the resulting bioplastics. The multifaceted use of these films was demonstrated by transforming them under gentle thermal treatment to partially oxidized chitosan-metal oxide materials or by disintegrating them in aqueous conditions to yield stable, water-dispersed chitosan-coated-metal oxide nanoparticles. The utility of these functional films was demonstrated through their use as antimicrobial agents, where significant improvement for inhibiting growth of positive and negative bacteria was observed compared to native, nonmodified chitosan films.
除了经济成本和资源消耗外,石油基塑料每年还产生大量废物,对环境和公众健康产生负面且极其惊人的影响。因此,人们越来越关注寻找生物基材料以找到可持续的替代品。在此,我们报告了一种新的直接方法,将内源性纳米物体(本文以金属氧化物簇为例)纳入多糖基薄膜中。基于多糖自组装与溶胶-凝胶聚合的超分子化学,能够将可溶性壳聚糖和金属醇盐前体转化为纳米结构的壳聚糖簇状金属氧化物薄膜。多种离散的单一、二元和三元混合金属氧化物成功地被纳入所得的生物塑料中。通过在温和热处理下将它们转化为部分氧化的壳聚糖-金属氧化物材料,或者在水性条件下将它们分解以产生稳定的、水分散的壳聚糖包覆金属氧化物纳米颗粒,证明了这些薄膜的多方面用途。通过将这些功能性薄膜用作抗菌剂,证明了它们的实用性,与天然的、未改性的壳聚糖薄膜相比,观察到对抑制阳性和阴性细菌生长有显著改善。