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生物基聚合物与氧化石墨烯自组装成具有增强机械性能的纳米复合薄膜。

Bioproduced Polymers Self-Assemble with Graphene Oxide into Nanocomposite Films with Enhanced Mechanical Performance.

机构信息

Department of Bionanoscience, Delft University of Technology, Van der Maasweg 9, 2629 HZ Delft, The Netherlands.

Division of Nanomaterials and Chemistry, Hefei National Laboratory for Physical Sciences at Microscale, University of Science and Technology of China, Hefei, 230026, Anhui, China.

出版信息

ACS Nano. 2020 Nov 24;14(11):14731-14739. doi: 10.1021/acsnano.0c00913. Epub 2020 Nov 4.

Abstract

Graphene oxide (GO) has recently been highlighted as a promising multipurpose two-dimensional material. However, free-standing graphene oxide films suffer from poor strength and flexibility, which limits scaling-up of production and lifetime structural robustness in applications. Inspired by the relationship between the organic and inorganic components of the hierarchical structure of nacre found in mollusk shells, we have fabricated self-assembled, layered graphene-based composite films. The organic phase of our composite is produced environmentally friendly and economical methods based on bacterial production of γ-poly(glutamic acid) (PGA). Composite films made of GO, PGA, and divalent cations (Ca) were prepared through a slow solvent evaporation method at ambient temperature, resulting in a nacre-like layered structure. These biobased nanocomposite films showed impressive mechanical properties, which resulted from a synergistic combination of hydrogen bonding with the bacterially produced PGA and ionic bonding with calcium ions (Ca). The GO/PGA/Ca composite films possessed a high strength of 150 ± 51.9 MPa and a high Young's modulus of 21.4 ± 8.7 GPa, which represents an increase of 120% and over 70% with respect to pure GO films. We provide rational design strategies for the production of graphene-based films with improved mechanical performance, which can be applied in filtration purification of wastewater in the paper, food, beverage, pigment, and pharmaceuticals industries, as well as for manufacturing of functional membranes and surface coatings.

摘要

氧化石墨烯(GO)最近作为一种很有前途的多功能二维材料而备受关注。然而,独立的氧化石墨烯薄膜存在强度和柔韧性差的问题,这限制了其在应用中的大规模生产和结构稳健性。受软体动物贝壳中珍珠层的分层结构中有机和无机成分之间关系的启发,我们制备了自组装的、分层的基于石墨烯的复合材料薄膜。我们的复合材料的有机相是通过环保且经济的方法,利用细菌生产γ-聚(谷氨酸)(PGA)得到的。GO、PGA 和二价阳离子(Ca)的复合薄膜是通过在环境温度下的缓慢溶剂蒸发方法制备的,从而形成类似珍珠层的分层结构。这些基于生物的纳米复合材料薄膜具有令人印象深刻的机械性能,这是由于细菌产生的 PGA 与钙离子(Ca)之间的氢键和离子键的协同组合所致。GO/PGA/Ca 复合薄膜的强度高达 150±51.9MPa,杨氏模量高达 21.4±8.7GPa,与纯 GO 薄膜相比,分别提高了 120%和 70%以上。我们为生产具有改善机械性能的基于石墨烯的薄膜提供了合理的设计策略,这些薄膜可应用于纸、食品、饮料、颜料和制药等行业的废水过滤净化,以及功能性膜和表面涂层的制造。

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