Cellulose through the Lens of Microfluidics: A Review

Aref Abbasi Moud
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引用次数: 7

Abstract

Cellulose, a linear polysaccharide, is the most common and renewable biopolymer in nature. Because this natural polymer cannot be melted (heated) or dissolved (in typical organic solvents), making complicated structures from it necessitates specialized material processing design. In this review, we looked at the literature to see how cellulose in various shapes and forms has been utilized in conjunction with microfluidic chips, whether as a component of the chips, being processed by a chip, or providing characterization via chips. We utilized more than approximately 250 sources to compile this publication, and we sought to portray cellulose manufacturing utilizing a microfluidic system. The findings reveal that a variety of products, including elongated fibres, microcapsules, core–shell structures and particles, and 3D or 2D structured microfluidics-based devices, may be easily built utilizing the coupled topics of microfluidics and cellulose. This review is intended to provide a concise, visual, yet comprehensive depiction of current research on the topic of cellulose product design and understanding using microfluidics, including, but not limited to, paper-based microfluidics design and implications, and the emulsification/shape formation of cellulose inside the chips.
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纤维素的微流体透镜:综述
纤维素是一种线性多糖,是自然界中最常见的可再生生物聚合物。由于这种天然聚合物不能熔化(加热)或溶解(在典型的有机溶剂中),因此用它制造复杂的结构需要专门的材料加工设计。在这篇综述中,我们查阅了文献,看看各种形状和形式的纤维素是如何与微流控芯片结合使用的,无论是作为芯片的组成部分,还是由芯片处理,还是通过芯片提供表征。我们利用了大约250多个来源来编写本出版物,我们试图利用微流体系统描绘纤维素制造。研究结果表明,利用微流体和纤维素的耦合主题,可以很容易地构建各种产品,包括细长纤维、微胶囊、核壳结构和颗粒,以及基于3D或2D结构的微流体设备。这篇综述旨在提供一个简洁、直观、全面的描述纤维素产品设计和使用微流体理解的当前研究主题,包括但不限于基于纸的微流体设计和含义,以及纤维素在芯片内的乳化/形状形成。
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