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木质素自组装现象及其在制浆、生物精炼和材料开发中的增值策略:第1部分。木质素自组装的物理化学

Lignin self-assembly phenomena and valorization strategies for pulping, biorefining, and materials development: Part 1. The physical chemistry of lignin self-assembly.

作者信息

Trovagunta Ramakrishna, Marquez Ronald, Tolosa Laura, Barrios Nelson, Zambrano Franklin, Suarez Antonio, Pal Lokendra, Gonzalez Ronalds, Hubbe Martin A

机构信息

Solenis LLC, 500 Hercules Rd, Wilmington, DE 19808, USA.

Department of Forest Biomaterials, North Carolina State University, Raleigh, NC 27695, USA.

出版信息

Adv Colloid Interface Sci. 2024 Oct;332:103247. doi: 10.1016/j.cis.2024.103247. Epub 2024 Jul 14.

Abstract

Physical chemistry aspects are emphasized in this comprehensive review of self-assembly phenomena involving lignin in various forms. Attention to this topic is justified by the very high availability, low cost, and renewable nature of lignin, together with opportunities to manufacture diverse products, for instance, polymers/resins, bioplastics, carbon fibers, bio-asphalt, sunscreen components, hydrophobic layers, and microcapsules. The colloidal lignin material, nanoparticles, and microstructures that can be formed as a result of changes in solvent properties, pH, or other adjustments to a suspending medium have been shown to depend on many factors. Such factors are examined in this work based on the concepts of self-assembly, which can be defined as an organizing principle dependent on specific attributes of the starting entities themselves. As a means to promote such concepts and to facilitate further development of nano-scale lignin products, this article draws upon evidence from a wide range of studies. These include investigations of many different plant sources of lignin, processes of delignification, solvent systems, anti-solvent systems or other means of achieving phase separation, and diverse means of achieving colloidal stability (if desired) of resulting self-assembled lignin structures. Knowledge of the self-organization behavior of lignin can provide significant structural information to optimize the use of lignin in value-added applications. Examples include chemical conditions and preparation procedures in which lignin-related compounds of particles organize themselves as spheres, hollow spheres, surface-bound layers, and a variety of other structures. Published articles show that such processes can be influenced by the selection of lignin type, pulping or extraction processes, functional groups such as phenolic, carboxyl, and sulfonate, chemical derivatization reactions, solvent applications, aqueous conditions, and physical processes, such as agitation. Precipitation from non-aqueous solutions represents a key focus of lignin self-assembly research. The review also considers stabilization mechanisms of self-assembled lignin-related structures.

摘要

本全面综述着重探讨了涉及各种形式木质素的自组装现象的物理化学方面。鉴于木质素具有极高的可得性、低成本以及可再生性,同时还有机会制造多种产品,如聚合物/树脂、生物塑料、碳纤维、生物沥青、防晒成分、疏水层和微胶囊,因此关注这一主题是合理的。已表明,由于溶剂性质、pH值的变化或对悬浮介质的其他调整而形成的胶体木质素材料、纳米颗粒和微观结构取决于许多因素。基于自组装的概念,本文对这些因素进行了研究,自组装可定义为一种依赖于起始实体自身特定属性的组织原则。作为推广此类概念并促进纳米级木质素产品进一步发展的一种手段,本文借鉴了广泛研究的证据。这些研究包括对许多不同植物来源的木质素、脱木质素过程、溶剂体系、反溶剂体系或其他实现相分离的方法,以及实现所得自组装木质素结构胶体稳定性(如有需要)的多种方法的研究。了解木质素的自组织行为可为优化木质素在增值应用中的使用提供重要的结构信息。例如,颗粒中与木质素相关的化合物在其中自组装成球体、空心球体、表面结合层和其他各种结构的化学条件和制备程序。已发表的文章表明,此类过程会受到木质素类型的选择、制浆或提取过程、酚羟基、羧基和磺酸根基团等官能团、化学衍生反应、溶剂应用、水性条件以及搅拌等物理过程的影响。从非水溶液中沉淀是木质素自组装研究的一个关键重点。本综述还考虑了自组装木质素相关结构的稳定机制。

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