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通过多效应调制显著增强纳米TiN分散的n型碲化铋的力学性能

Dramatically Enhanced Mechanical Properties of Nano-TiN-Dispersed n-Type Bismuth Telluride by Multi-Effect Modulation.

作者信息

Lin Shengao, Li Jing, Yan Heng, Meng Xianfu, Xiang Qingpei, Jing Hang, Chen Xiaoxi, Yang Chuting

机构信息

Institute of Nuclear Physics and Chemistry, China Academy of Engineering Physics, Mianyang 621900, China.

出版信息

Materials (Basel). 2024 Apr 22;17(8):1919. doi: 10.3390/ma17081919.

Abstract

Bismuth telluride (BiTe)-based alloys have been extensively employed in energy harvesting and refrigeration applications for decades. However, commercially produced BiTe-based alloys using the zone-melting (ZM) technique often encounter challenges such as insufficient mechanical properties and susceptibility to cracking, particularly in n-type BiTe-based alloys, which severely limit the application scenarios for bismuth telluride devices. In this work, we seek to enhance the mechanical properties of n-type BiTeSe alloys while preserving their thermoelectrical performance by a mixed mechanism of grain refinement and the TiN composite phase-introduced pinning effect. These nanoscale processes, coupled with the addition of TiN, result in a reduction in grain size. The pinning effects of nano-TiN contribute to increased resistance to crack propagation. Finally, the TiN-dispersed BiTeSe samples demonstrate increased hardness, bending strength and compressive strength, reaching 0.98 GPa, 36.3 MPa and 74 MPa. When compared to the ZM ingots, those represent increments of 181%, 60% and 67%, respectively. Moreover, the thermoelectric performance of the TiN-dispersed BiTeSe samples is identical to the ZM ingots. The samples exhibit a peak dimensionless figure of merit () value of 0.957 at 375 K, with an average value of 0.89 within the 325-450 K temperature range. This work has significantly enhanced mechanical properties, increasing the adaptability and reliability of bismuth telluride devices for various applications, and the multi-effect modulation of mechanical properties demonstrated in this study can be applied to other thermoelectric material systems.

摘要

几十年来,碲化铋(BiTe)基合金已广泛应用于能量收集和制冷领域。然而,采用区熔(ZM)技术商业化生产的BiTe基合金常常面临机械性能不足和易开裂等挑战,尤其是在n型BiTe基合金中,这严重限制了碲化铋器件的应用场景。在这项工作中,我们试图通过晶粒细化和引入TiN复合相的钉扎效应的混合机制来提高n型BiTeSe合金的机械性能,同时保持其热电性能。这些纳米级过程,再加上TiN的添加,导致晶粒尺寸减小。纳米TiN的钉扎效应有助于提高抗裂纹扩展能力。最终,TiN分散的BiTeSe样品表现出更高的硬度、抗弯强度和抗压强度,分别达到0.98 GPa、36.3 MPa和74 MPa。与ZM铸锭相比,分别提高了181%、60%和67%。此外,TiN分散的BiTeSe样品的热电性能与ZM铸锭相同。样品在375 K时的峰值无量纲优值()为值0.957,在325 - 450 K温度范围内的平均值为0.89。这项工作显著提高了机械性能,增强了碲化铋器件在各种应用中的适应性和可靠性,并且本研究中展示的机械性能的多效调制可应用于其他热电材料系统。

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