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由不同储存时间的非超声处理悬浮体制备的剪切涂层线性双折射和手性纤维素纳米晶体薄膜。

Shear-Coated Linear Birefringent and Chiral Cellulose Nanocrystal Films Prepared from Non-Sonicated Suspensions with Different Storage Time.

作者信息

Juárez-Rivera Olga Rubi, Mauricio-Sánchez Reina Araceli, Järrendahl Kenneth, Arwin Hans, Mendoza-Galván Arturo

机构信息

Cinvestav-Unidad Querétaro, Libramiento Norponiente 2000, Querétaro 76230, Mexico.

Materials Optics, Department of Physics, Chemistry and Biology, Linköping University, SE-581 83 Linköping, Sweden.

出版信息

Nanomaterials (Basel). 2021 Aug 30;11(9):2239. doi: 10.3390/nano11092239.

Abstract

Nanocelluloses are very attractive materials for creating structured films with unique optical properties using different preparation techniques. Evaporation-induced self-assembly of cellulose nanocrystals (CNC) aqueous suspensions produces iridescent films with selective circular Bragg reflection. Blade coating of sonicated CNC suspensions leads to birefringent CNC films. In this work, fabrication of both birefringent and chiral films from non-sonicated CNC suspensions using a shear-coating method is studied. Polarization optical microscopy and steady-state viscosity profiles show that non-sonicated CNC suspensions (concentration of 6.5 wt%) evolve with storage time from a gel-like shear-thinning fluid to a mixture of isotropic and chiral nematic liquid crystalline phases. Shear-coated films prepared from non-sonicated fresh CNC suspensions are birefringent, whereas films prepared from suspensions stored several weeks show reflection of left-handed polarized light. Quantification of linear and circular birefringence as well circular dichroism in the films is achieved by using a Mueller matrix formalism.

摘要

纳米纤维素是极具吸引力的材料,可利用不同制备技术制造具有独特光学性质的结构化薄膜。纤维素纳米晶体(CNC)水悬浮液的蒸发诱导自组装可产生具有选择性圆形布拉格反射的彩虹色薄膜。超声处理的CNC悬浮液刮涂可得到双折射CNC薄膜。在这项工作中,研究了使用剪切涂层法由未超声处理的CNC悬浮液制备双折射和手性薄膜。偏振光学显微镜和稳态粘度曲线表明,未超声处理的CNC悬浮液(浓度为6.5 wt%)随储存时间从类凝胶状剪切稀化流体演变为各向同性和手性向列液晶相的混合物。由未超声处理的新鲜CNC悬浮液制备的剪切涂层薄膜具有双折射性,而由储存数周的悬浮液制备的薄膜则显示出左旋偏振光的反射。通过使用穆勒矩阵形式对薄膜中的线性和圆形双折射以及圆二色性进行了量化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6024/8465068/7255db87f55a/nanomaterials-11-02239-g0A1.jpg

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