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柔性、高功率密度、可穿戴的热电纳米发电机和自供电温度传感器。

Flexible, High-Power Density, Wearable Thermoelectric Nanogenerator and Self-Powered Temperature Sensor.

机构信息

Quantum Sensing Center , Zhejiang Lab , Hangzhou 310000 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Oct 23;11(42):38616-38624. doi: 10.1021/acsami.9b11435. Epub 2019 Oct 8.

DOI:10.1021/acsami.9b11435
PMID:31556992
Abstract

We propose a flexible and wearable thermoelectric nanogenerator (FTEG) made from BiTe, which allows high voltage and output power density. The proposed FTEG works as a thermopile with the end-to-end connection of 126 thermoelectric legs, and which is fabricated through magnetron sputtering Cu conductor on polyethylene terephthalate film. Bi, Te, Sb, and Se alloys are used to prepare thermoelectric materials by doping in a fixed proportion and zone melting, and nickel plating on the surface mitigates the deterioration of thermoelectric properties caused by the diffusion of Cu atoms or Cu ions. The thermoelectric figure of merit is stable and maintained above 0.7, up to 1.02. More flexibility is allowed by employing double sinusoidal serpentine connecting wires, and no significant property changes are observed even after being folded 200 times. When the temperature difference reaches 50 K, the output voltage of the FTEG will be no less than 520 mV, and the power density will reach 11.14 mW·cm. By integration of a low-power, low-threshold voltage boost circuit on the back end of the FTEG, the electronic watch with a liquid crystal display screen can be easily powered to work properly. Furthermore, the FTEG is temperature-sensitive and, thus, can be used for temperature measurement with a resolution of 0.5 K. This work may have important prospects in flexible wearable physical sensors and individualized medical care.

摘要

我们提出了一种由 BiTe 制成的灵活可穿戴热电纳米发电机(FTEG),它可以提供高电压和输出功率密度。所提出的 FTEG 作为一个热堆工作,通过在聚对苯二甲酸乙二酯薄膜上磁控溅射 Cu 导体实现 126 个热电腿的端到端连接。通过在固定比例和区域熔化中掺杂 Bi、Te、Sb 和 Se 合金来制备热电材料,并在表面镀镍可以减轻 Cu 原子或 Cu 离子扩散导致的热电性能恶化。热电优值稳定,保持在 0.7 以上,高达 1.02。通过采用双正弦蛇形连接导线,可以允许更大的灵活性,即使折叠 200 次也不会观察到明显的性能变化。当温差达到 50 K 时,FTEG 的输出电压将不低于 520 mV,功率密度将达到 11.14 mW·cm。通过在 FTEG 的后端集成一个低功率、低阈值电压升压电路,可以轻松为带有液晶显示屏的电子表供电使其正常工作。此外,FTEG 对温度敏感,因此可用于测量分辨率为 0.5 K 的温度。这项工作在灵活可穿戴物理传感器和个性化医疗方面可能具有重要的前景。

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