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生物基纳米材料——界面相互作用在先进材料中的作用。

Biobased Nanomaterials─The Role of Interfacial Interactions for Advanced Materials.

机构信息

Department of Bioproducts and Biosystems, School of Chemical Engineering, Aalto University, Vuorimiehentie 1, 02150Espoo, Finland.

出版信息

Chem Rev. 2023 Mar 8;123(5):2200-2241. doi: 10.1021/acs.chemrev.2c00492. Epub 2023 Jan 31.

Abstract

This review presents recent advances regarding biomass-based nanomaterials, focusing on their surface interactions. Plant biomass-based nanoparticles, like nanocellulose and lignin from industry side streams, hold great potential for the development of lightweight, functional, biodegradable, or recyclable material solutions for a sustainable circular bioeconomy. However, to obtain optimal properties of the nanoparticles and materials made thereof, it is crucial to control the interactions both during particle production and in applications. Herein we focus on the current understanding of these interactions. Solvent interactions during particle formation and production, as well as interactions with water, polymers, cells and other components in applications, are addressed. We concentrate on cellulose and lignin nanomaterials and their combination. We demonstrate how the surface chemistry of the nanomaterials affects these interactions and how excellent performance is only achieved when the interactions are controlled. We furthermore introduce suitable methods for probing interactions with nanomaterials, describe their advantages and challenges, and introduce some less commonly used methods and discuss their possible applications to gain a deeper understanding of the interfacial chemistry of biobased nanomaterials. Finally, some gaps in current understanding and interesting emerging research lines are identified.

摘要

这篇综述介绍了生物质基纳米材料的最新进展,重点介绍了它们的表面相互作用。植物生物质基纳米颗粒,如工业侧流中的纳米纤维素和木质素,为开发轻质、功能性、可生物降解或可回收的材料解决方案,以实现可持续的循环生物经济提供了巨大的潜力。然而,为了获得纳米颗粒和由其制成的材料的最佳性能,控制颗粒生产过程和应用过程中的相互作用至关重要。本文重点介绍了对这些相互作用的现有理解。文中讨论了颗粒形成和生产过程中的溶剂相互作用,以及在应用中与水、聚合物、细胞和其他成分的相互作用。我们专注于纤维素和木质素纳米材料及其组合。我们展示了纳米材料的表面化学如何影响这些相互作用,以及只有当相互作用得到控制时,才能实现优异的性能。我们还介绍了适用于探测与纳米材料相互作用的方法,描述了它们的优点和挑战,并介绍了一些不太常用的方法,并讨论了它们在获得对生物基纳米材料界面化学更深入理解方面的可能应用。最后,确定了当前理解中的一些差距和一些新兴的有趣研究方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c883/9999428/9e1aa46c1f01/cr2c00492_0001.jpg

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