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双金属金属-酚醛网络向生物质衍生的分级多孔纳米纤维的热转变

Thermal Transition of Bimetallic Metal-Phenolic Networks to Biomass-Derived Hierarchically Porous Nanofibers.

作者信息

Xiao Gao, Chen Wei, Tian Fan, Richardson Joseph J, Tardy Blaise L, Liu Minghua, Joshi Neel S, Guo Junling

机构信息

Department of Environmental Science and Engineering, College of Environment and Resources, Fuzhou University, Fuzhou, 350108, China.

Wyss Institute for Biologically Inspired Engineering, John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, 02138, USA.

出版信息

Chem Asian J. 2018 Apr 16;13(8):972-976. doi: 10.1002/asia.201800284. Epub 2018 Mar 15.

Abstract

The development and utilization of biomass resources could contribute to new materials for long-term sustainable energy storage and environmental applications, reduce environmental impacts, and meet the urgent need for green and sustainable development strategies. Herein, a bimetallic metal-phenolic network (MPN) was applied to incorporate different metallic element species into cattle skin and fabricate collagen-fiber-derived complex oxide nanofibers using natural polyphenols (Myrica tannins). Direct thermal transition of these biomass-MPN composites generates hierarchically porous nanofibers possessing micro- and mesoporous architectures along with a well-preserved macroscopic structure. The pore system and complex oxide composition provide excellent photocatalytic performance. This low-cost, simple, and readily scalable MPN-based approach provides a straightforward route to synthesize nanostructured materials directly from biomass, which could play important roles in a wide range of potential applications.

摘要

生物质资源的开发和利用有助于提供用于长期可持续储能及环境应用的新材料,减少环境影响,并满足绿色和可持续发展战略的迫切需求。在此,一种双金属金属-酚醛网络(MPN)被用于将不同的金属元素种类引入牛皮中,并使用天然多酚(杨梅单宁)制备胶原纤维衍生的复合氧化物纳米纤维。这些生物质-MPN复合材料的直接热转变产生了具有微孔和介孔结构的分级多孔纳米纤维,同时保留了良好的宏观结构。孔隙系统和复合氧化物组成提供了优异的光催化性能。这种基于MPN的低成本、简单且易于扩展的方法提供了一条直接从生物质合成纳米结构材料的途径,这可能在广泛的潜在应用中发挥重要作用。

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