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纤维素纳米晶液晶相:流变学与光学、散射和光谱学联用表征的进展与挑战。

Cellulose Nanocrystal Liquid Crystal Phases: Progress and Challenges in Characterization Using Rheology Coupled to Optics, Scattering, and Spectroscopy.

机构信息

Department of Industrial Materials Science, Chalmers University of Technology, 412 96 Gothenburg, Sweden.

Wallenberg Wood Science Center (WWSC), Chalmers University of Technology, 412 96 Gothenburg, Sweden.

出版信息

ACS Nano. 2021 May 25;15(5):7931-7945. doi: 10.1021/acsnano.0c09829. Epub 2021 Mar 23.

DOI:10.1021/acsnano.0c09829
PMID:33756078
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8158857/
Abstract

Cellulose nanocrystals (CNCs) self-assemble and can be flow-assembled to liquid crystalline orders in a water suspension. The orders range from nano- to macroscale with the contributions of individual crystals, their micron clusters, and macroscopic assemblies. The resulting hierarchies are optically active materials that exhibit iridescence, reflectance, and light transmission. Although these assemblies have the potential for future renewable materials, details about structures on different hierarchical levels that span from the nano- to the macroscale are still not unraveled. Rheological characterization is essential for investigating flow properties; however, bulk material properties make it difficult to capture the various length-scales during assembly of the suspensions, for example, in simple shear flow. Rheometry is combined with other characterization methods to allow direct analysis of the structure development in the individual hierarchical levels. While optical techniques, scattering, and spectroscopy are often used to complement rheological observations, coupling them to allow simultaneous observation is paramount to fully understand the details of CNC assembly from liquid to solid. This Review provides an overview of achievements in the coupled analytics, as well as our current opinion about opportunities to unravel the structural distinctiveness of cellulose nanomaterials.

摘要

纤维素纳米晶体(CNCs)可以自组装,并在水悬浮液中流动组装成液晶有序结构。这些有序结构的范围从纳米级到宏观级,由单个晶体、它们的微米级簇和宏观组装体共同贡献。由此产生的层次结构是光学活性材料,具有虹彩、反射和透光性。尽管这些组装体具有未来可再生材料的潜力,但关于跨越纳米到宏观尺度的不同层次结构的细节仍未被揭示。流变学特性分析对于研究流动特性至关重要;然而,由于大块材料的性质,在悬浮液的组装过程中很难捕捉到各种长度尺度,例如在简单剪切流中。流变学特性分析与其他特性分析方法相结合,可以直接分析各个层次结构的发展情况。虽然光学技术、散射和光谱学通常用于补充流变学观察,但将它们结合起来进行同步观察对于充分了解从液体到固体的 CNC 组装的细节至关重要。这篇综述提供了对耦合分析的成就的概述,以及我们对揭示纤维素纳米材料结构独特性的机会的看法。

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