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基于缝合碳纳米管纤维的高性能热电织物。

High-Performance Thermoelectric Fabric Based on a Stitched Carbon Nanotube Fiber.

作者信息

Park Kyung Tae, Lee Taemin, Ko Youngpyo, Cho Young Shik, Park Chong Rae, Kim Heesuk

机构信息

Soft Hybrid Materials Research Center, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea.

Carbon Nanomaterials Design Laboratory, Research Institute of Advanced Materials, Department of Materials Science and Engineering, Seoul National University, Seoul 08826, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2021 Feb 10;13(5):6257-6264. doi: 10.1021/acsami.0c20252. Epub 2021 Jan 28.

Abstract

With the continuous development of flexible and wearable thermoelectric generators (TEGs), high-performance materials and their integration into convenient wearable devices have to be considered. Herein, we have demonstrated highly aligned wet-spun carbon nanotube (CNT) fibers by optimizing the liquid crystalline (LC) phase via hydrochloric acid purification. The liquid crystalline phase facilitates better alignment of CNTs during fiber extrusion, resulting in the high power factor of 2619 μW m K, which surpasses those of the dry-spun CNT yarns. A flexible all-carbon TEG was fabricated by stitching a single CNT fiber and doping selected segments into n-type by simple injection doping. The flexible TEG shows the maximum output power densities of 1.9 mW g and 10.3 mW m at Δ = 30 K. Furthermore, the flexible TEG was developed into a prototype watch-strap TEG, demonstrating easy wearability and direct harvesting of body heat into electrical energy. Combining high-performance materials with scalable fabrication methods ensures the great potential for flexible/or wearable TEGs to be utilized as future power-conversion devices.

摘要

随着柔性可穿戴热电发电机(TEG)的不断发展,必须考虑高性能材料及其与便捷可穿戴设备的集成。在此,我们通过盐酸纯化优化液晶(LC)相,展示了高度取向的湿法纺丝碳纳米管(CNT)纤维。液晶相有助于在纤维挤出过程中使碳纳米管更好地取向,从而产生2619 μW m K的高功率因数,超过了干法纺丝碳纳米管纱线的功率因数。通过缝合单根碳纳米管纤维并通过简单的注入掺杂将选定部分掺杂成n型,制备了一种柔性全碳TEG。该柔性TEG在Δ = 30 K时显示出1.9 mW g和10.3 mW m的最大输出功率密度。此外,该柔性TEG被开发成原型表带TEG,展示了易于穿戴性以及将人体热量直接转化为电能的能力。将高性能材料与可扩展的制造方法相结合,确保了柔性/可穿戴TEG作为未来功率转换设备具有巨大潜力。

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