掺杂 Ge 对 α-Ag2S 热电和机械特性的影响

Gabriela Hrickova, Frantisek Mihok, Z. Molčanová, Beáta Ballóková, Wanda Mamrilla, R. Džunda, Peter Lukacs, Alena Pietrikova, Karel Saksl
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引用次数: 0

摘要

热电材料能够根据温度梯度产生电能。不可再生能源正在枯竭,因此开发环境可持续的可再生能源至关重要。这些材料作为替代能源的一个潜在应用领域是可穿戴电子设备。热电材料可用于普通电子设备,也可用于军事、医疗保健和太空领域。作为一种韧性 N 型半导体材料,硫化银是最具热电潜力的材料之一。选择适当的掺杂剂可以改善 Ag2S 的性能。本研究探讨了通过掺杂 Ge 来改善 Ag2S 热电、机械和硬度特性的方法。加入 Ge 后,塞贝克系数从 P 型的 -1051 μV-K-1 增加到最大值 -87 μV-K-1,使其更接近于过渡型。热电发生器需要 N 型和 P 型材料才能工作。通过使用由类似材料制成的同质结,可以减少不同材料不同热膨胀率所造成的内应力。为了证明 Ge 整合,对样品的微观结构采用了扫描电子显微镜和 X 射线衍射技术。此外,还使用了补充剂来增加材料的延展性和延展性,使其适用于可穿戴电子设备的发电。根据室温测量结果,这些材料显示出明显的功率因数值。这证明,能够产生可用电压的材料处于建议的用户身体环境温度范围内,因此是可穿戴电子设备的潜在候选材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Effect of Ge Doping on α-Ag2S’s Thermoelectric and Mechanical Properties
Thermoelectric materials are capable of generating electrical energy in response to a temperature gradient. Non-renewable energy resources are depleting, so the development of renewable energy sources that are environmentally sustainable is essential. One potential application of these materials as an alternative energy source is in wearable electronics. Thermoelectric materials are used in common electrical devices, as well as by the military, in healthcare, and in space. As a ductile N-type semiconducting material, silver sulfide is one of the most promising materials in terms of thermoelectric potential. The properties of Ag2S can be improved by choosing the appropriate dopants. This study investigates the methods by which the thermoelectric, mechanical, and hardness properties of Ag2S are improved via Ge doping. The addition of Ge increases the Seebeck coefficient to a maximum of −87 μV·K−1 from −1051 μV·K−1 to P-type, bringing it closer to transitioning. In order to work, a thermoelectric generator requires both N- and P-type materials. By applying homojunctions made from similar materials, internal stresses caused by the varying thermal expansion rates of different materials are reduced. In order to demonstrate Ge integration, scanning electron microscopy and X-ray diffraction were applied to the sample microstructure. In addition, supplementation was used to increase the ductility and malleability of materials to make them suitable for power generation in wearable electronics. These materials showed significant power factor values according to room-temperature measurements. This proves that materials capable of generating usable voltage lie in the recommended ambient temperature range for the user’s body, thus rendering them potential candidates for wearable electronics.
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