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纤维素纳米纤维薄膜及其振动能量收集。

Cellulose Nanofiber Films and Their Vibration Energy Harvesting.

机构信息

Department of Electrical Engineering, Inha University, 100 Inha-ro Michuhol-ku, Incheon 22212, Korea.

Department of Mechanical Engineering, Inha University, 100 Inha-ro, Michuhol-ku, Incheon 22212, Korea.

出版信息

Sensors (Basel). 2022 Aug 21;22(16):6280. doi: 10.3390/s22166280.

Abstract

Cellulose, the most abundant sustainable material on Earth, has excellent mechanical and physical properties, high optical transparency, biocompatibility, and piezoelectricity. So, it has many possibilities for future materials, and many researchers are interested in its application. In this paper, cellulose nanofiber (CNF) and CNF/polyvinyl alcohol (PVA) films are made, and their vibration energy harvesting is studied. CNF was isolated by chemical and physical methods, and the CNF suspension was cast on a flat substrate to make a film. A cast CNF wet film stayed in a 5 Tesla superconductor magnet for 7 days, which resulted in CNF alignment perpendicular to the magnetic field. To further improve the mechanical properties of the CNF film, mechanical stretching was applied. The CNF suspension was mixed with PVA, giving the film toughness. The cast CNF/PVA wet film was mechanically stretched and dried, which improved the CNF alignment. The fabricated CNF and CNF/PVA films were characterized using scanning electron microscopy and X-ray diffraction to verify the alignment. By stretching, the aligned CNF/PVA film exhibits the largest mechanical properties along the aligned direction. The maximum Young's modulus and tensile strength of the 50% stretched CNF/PVA film are 14.9 GPa and 170.6 MPa, respectively. Finally, a vibration energy harvesting experiment was performed by invoking the piezoelectric behavior of the pure CNF, and 50% stretched CNF/PVA films. The harvester structure was innovated by adopting a cymbal structure, which was beneficial to producing large in-plane strain on the films. The designed cymbal structure was analyzed using ANSYS, and its natural frequency was experimentally verified. The CNF/PVA film performs better vibration energy harvesting than the pure CNF film. The CNF/PVA film is applicable for biocompatible and flexible vibration energy harvesting.

摘要

纤维素是地球上最丰富的可持续材料,具有优异的机械和物理性能、高光学透明度、生物相容性和压电性。因此,它在未来材料方面有很多可能性,许多研究人员对其应用感兴趣。本文制备了纤维素纳米纤维(CNF)和 CNF/聚乙烯醇(PVA)薄膜,并对其振动能量收集进行了研究。通过化学和物理方法分离出 CNF,将 CNF 悬浮液浇铸在平坦基底上以制备薄膜。浇铸的 CNF 湿膜在 5 特斯拉超导磁体中放置 7 天,导致 CNF 沿磁场方向垂直排列。为了进一步提高 CNF 薄膜的机械性能,施加了机械拉伸。将 CNF 悬浮液与 PVA 混合,赋予薄膜韧性。将浇铸的 CNF/PVA 湿膜进行机械拉伸和干燥,改善了 CNF 的排列。通过扫描电子显微镜和 X 射线衍射对制备的 CNF 和 CNF/PVA 薄膜进行了表征,以验证其排列。通过拉伸,定向 CNF/PVA 薄膜在定向方向上表现出最大的机械性能。50%拉伸 CNF/PVA 薄膜的最大杨氏模量和拉伸强度分别为 14.9 GPa 和 170.6 MPa。最后,通过利用纯 CNF 和 50%拉伸 CNF/PVA 薄膜的压电行为进行了振动能量收集实验。采用钹式结构创新了能量收集器结构,有利于在薄膜上产生大的面内应变。采用 ANSYS 对设计的钹式结构进行了分析,并通过实验验证了其固有频率。CNF/PVA 薄膜在振动能量收集方面的性能优于纯 CNF 薄膜。CNF/PVA 薄膜适用于生物相容性和柔性振动能量收集。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5415/9414829/26f30db82719/sensors-22-06280-g001.jpg

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