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基于纤维素纳米纤维和导电纳米材料的太赫兹双折射仿生气凝胶。

Terahertz Birefringent Biomimetic Aerogels Based on Cellulose Nanofibers and Conductive Nanomaterials.

机构信息

Laboratory for Cellulose & Wood Materials, Empa, 8600 Dübendorf, Switzerland.

Laboratory for Transport at Nanoscale Interfaces, Empa, 8600 Dübendorf, Switzerland.

出版信息

ACS Nano. 2021 Apr 27;15(4):7451-7462. doi: 10.1021/acsnano.1c00856. Epub 2021 Apr 19.

Abstract

Biomimetic, lamellar, and highly porous transition-metal carbide (MXene) embedded cellulose nanofiber (CNF) aerogels are assembled by a facile bidirectional freeze-drying approach. The biopolymer aerogels have large-scale, parallel-oriented micrometer-sized pores and show excellent mechanical strength and flexibility, tunable electrical properties, and low densities (2.7-20 mg/cm). The CNF, MXene, and lamellar pores are efficiently utilized to endow the aerogels with exceptionally high birefringence in the terahertz (THz) regime. Birefringence values as high as 0.09-0.27 at 0.4 THz are achieved, which is comparable to most commercial THz birefringent materials such as liquid crystals, which suffer from fast disintegration, high cost, and complicated preparation processes. Empirical modeling for different MXene contents and an experimental comparison with silver nanowire or carbon nanotube embedded CNF aerogels suggest that the intrinsic conductivity and content of embedded nanomaterials, the aerogel porosity, and the lamellar cell walls can affect the optical properties such as the THz birefringence and absorption. The determination of optical anisotropy in the biopolymer aerogels lays a foundation for further exploration of ultralight, freestanding, and low-cost biomimetic porous architecture-based THz devices.

摘要

仿生层状且具有高多孔性的过渡金属碳化物 (MXene) 嵌入纤维素纳米纤维 (CNF) 气凝胶是通过简便的双向冷冻干燥方法组装而成的。该生物聚合物气凝胶具有大规模的、平行取向的微米级孔,具有优异的机械强度和柔韧性、可调的电学性能以及较低的密度(2.7-20mg/cm)。CNF、MXene 和层状孔有效地用于赋予气凝胶在太赫兹 (THz) 范围内极高的双折射。在 0.4THz 时,实现了高达 0.09-0.27 的双折射值,这可与大多数商用 THz 双折射材料(如液晶)相媲美,而液晶存在快速分解、高成本和复杂制备工艺等问题。不同 MXene 含量的经验模型以及与嵌入 CNF 气凝胶的银纳米线或碳纳米管的实验比较表明,嵌入纳米材料的固有导电性和含量、气凝胶的孔隙率和层状细胞壁都可以影响光学性质,如 THz 双折射和吸收。生物聚合物气凝胶的各向异性的确定为进一步探索超轻、独立式和低成本的仿生多孔架构的 THz 器件奠定了基础。

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