纤维素纳米晶体液晶结构的裁剪与表征及其在光电机械多功能应用中的应用

Inseok Chae, A. Meddeb, Z. Ounaies, Seong H. Kim
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摘要

摘要以木材、棉花等纤维素基生物聚合物为原料制备的纤维素纳米晶体(CNC),由于其独特的光学性能和优异的力学性能,在生物电子学和生物医学工程中具有潜在的应用前景,因此其液晶(LC)行为一直受到人们的积极研究。特别是,由于相位和取向是决定光学和机械性能以及机电性能的关键因素,人们已经进行了许多尝试来控制lc - cnc的相位和取向。通过机械力、电场和磁场的应用,取得了一定程度的成功;然而,由于各种分子间相互作用,实现可以在宏观尺度上利用的cnc的均匀排列仍然是难以捉摸的。由于其复杂的生物结构,表征cnc的相和取向也具有挑战性。在本报告中,我们介绍了通过自组装、机械力和电场来控制lc - cnc的相位和方向的方法。讨论了cnc在极性溶剂和空气/水界面上的液晶行为。研究了直流电场作用下cnc的平移和旋转行为与表面电荷和偶极矩的关系。此外,我们还介绍了一种非线性光学过程,即和频产生(SFG)光谱,用于lc - cnc的结构表征。利用SFG不仅可以分析cnc的晶相和结构,还可以分析cnc的极性排序,这是决定cnc机电性能的关键因素。基于纤维素的智能材料的开发将扩大可用功能材料的范围,这些功能材料重量轻,柔韧,机械韧性强,并且在中等高温(高达300°C)下热稳定。
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Tailoring and Characterization of the Liquid Crystalline Structure of Cellulose Nanocrystals for Opto-Electro-Mechanical Multifunctional Applications
Liquid crystalline (LC) behaviors of cellulose nanocrystal (CNC), derived from wood, cotton or other cellulose-based biopolymers, have been actively investigated due to their unique optical properties and their superb mechanical properties, which open up potential applications in bioelectronics and biomedical engineering. In particular, many attempts have been made to control phase and orientation of LC-CNCs because they are critical factors deciding optical and mechanical properties, and electromechanical performances. Through the applications of mechanical force, electric field and magnetic field, some degree of success has been achieved; however, realizing homogeneous arrangements of CNCs that can be exploited at the macroscale is still elusive, owing to a variety of intermolecular interactions. The characterizations of the LC phase and orientation of CNCs are also challenging due to their complex biological structures. In this report, we introduce approaches to control the phase and orientation of LC-CNCs through the self-assembly, mechanical force and electric field. The liquid crystalline behaviors of CNCs in polar solvents and at the air/water interface are discussed. Translational and rotational behaviors of CNCs under DC electric field are also investigated as a function of their surface charge and dipole moment. In addition, we introduce a nonlinear optical process, namely, sum frequency generation (SFG) spectroscopy, for the structural characterization of LC-CNCs. Using SFG, we can analyze not only crystal phase and structure, but also polar ordering of CNCs which plays a key role in determining their electromechanical performances. Development of cellulose-based smart materials will expand the spectrum of available functional materials that are lightweight, flexible, mechanically tough, and thermally stable at moderately high temperatures (up to 300°C).
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