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基于液态金属的超拉伸和结构可设计摩擦纳米发电机用于可穿戴电子设备。

Liquid-Metal-Based Super-Stretchable and Structure-Designable Triboelectric Nanogenerator for Wearable Electronics.

机构信息

Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, and Joint International Research Laboratory of Carbon-Based Functional Materials and Devices, Soochow University , Suzhou 215123, China.

出版信息

ACS Nano. 2018 Feb 27;12(2):2027-2034. doi: 10.1021/acsnano.8b00147. Epub 2018 Feb 12.

Abstract

The rapid advancement of intelligent wearable electronics imposes the emergent requirement for power sources that are deformable, compliant, and stretchable. Power sources with these characteristics are difficult and challenging to achieve. The use of liquid metals as electrodes may provide a viable strategy to produce such power sources. In this work, we propose a liquid-metal-based triboelectric nanogenerator (LM-TENG) by employing Galinstan as the electrode and silicone rubber as the triboelectric and encapsulation layer. The small Young's modulus of the liquid metal ensures the electrode remains continuously conductive under deformations, stretching to a strain as large as ∼300%. The surface oxide layer of Galinstan effectively prevents the liquid Galinstan electrode from further oxidization and permeation into silicone rubber, yielding outstanding device stability. Operating in the single-electrode mode at 3 Hz, the LM-TENG with an area of 6 × 3 cm produces an open-circuit voltage of 354.5 V, transferred short-circuit charge of 123.2 nC, short-circuit current of 15.6 μA, and average power density of 8.43 mW/m, which represent outstanding performance values for TENGs. Further, the LM-TENG maintains stable performance under various deformations, such as stretching, folding, and twisting. LM-TENGs in different forms, such as bulk-shaped, bracelet-like, and textile-like, are all able to harvest mechanical energy from human walking, arm shaking, or hand patting to sustainably drive wearable electronic devices.

摘要

智能可穿戴电子产品的快速发展提出了对可变形、顺应和可拉伸的电源的紧急需求。具有这些特性的电源很难实现。使用液态金属作为电极可能提供了一种可行的策略来制造这种电源。在这项工作中,我们通过使用镓铟锡合金(Galinstan)作为电极,硅橡胶作为摩擦电和封装层,提出了一种基于液态金属的摩擦纳米发电机(LM-TENG)。液态金属的小杨氏模量确保电极在变形下保持连续导电,可拉伸至高达约 300%的应变。镓铟锡合金的表面氧化层有效地防止液态镓铟合金电极进一步氧化和渗透到硅橡胶中,从而实现了出色的器件稳定性。在 3 Hz 的单电极模式下运行,面积为 6×3 cm 的 LM-TENG 产生 354.5 V 的开路电压、123.2 nC 的转移短路电荷量、15.6 μA 的短路电流和 8.43 mW/m 的平均功率密度,这些都是 TENG 中非常出色的性能值。此外,LM-TENG 在各种变形下,如拉伸、折叠和扭曲,都能保持稳定的性能。具有不同形式的 LM-TENG,如块状、手镯状和织物状,都能够从人类行走、手臂晃动或拍手等机械运动中收集能量,以可持续地驱动可穿戴电子设备。

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