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通过超快烧结法制备高性能硒化银热电材料
Preparation of High-performance Silver Selenide Thermoelectric Materials by an Ultrafast Sintering Method
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- DOI:
- 作者:
- 廖义燕 ,李盼盼 ,王泽高 ,周重见 ,杨 磊
LIAO Yiyan, LI Panpan ,WANG Zegao ,ZHOU Chongjian ,YANG Lei
- 作者单位:
- 四川大学 材料科学与工程学院,四川 成都 610065; 西北工业大学 材料学院,陕西 西安 710072; 西北工业大学 凝固技术国家重点实验室,陕西 西安 710072
School of Materials Science and Engineering, Sichuan University, Chengdu 610065, China; School of Materials, Northwestern Polytechnical University, Xi'an 710072, China; State Key Laboratory of Solidification Technology, Northwestern Polytechnical University, Xi'an 710072, China
- 关键词:
- Ag 2 Se ;室温;快速烧结;热电性能
Ag 2 Se; room temperature; ultrafast sintering; thermoelectric performance
- 摘要:
- Ag 2 Se 是一种本征热电性能和机械性能良好的 n 型室温热电材料,近年来受到研究者的广泛关注。 本文将冷压工艺和碳热法相结合开发了一种超快烧结法来制备 Ag 2 Se 块体材料,可在 1 min 内完成烧结。 通过调整烧结温度,Ag 2 Se 样品的电输运性能可以得到调控,而超快烧工艺能够获得多孔样品,使热导率显著降低,在 300 K 时,超快烧结样品的总热导率能低至 0.56 W/(m · K) ,相比于放电等离子体烧结法制备的纯相 Ag 2 Se 块体,降低了约 44% 。 最终在 673 K 温度下烧结的 Ag 2 Se 样品获得了约为 0.66 的室温 zT 值,与传统方法制备的室温热电材料相当。本工作展示了一种便捷、高效的热电材料烧结方法,可以制备出热电性能优异的 Ag 2 Se 块体,同时为 Ag 2 Se 进一步的性能优化提供了基础。Ag 2 Se is an n-type room temperature thermoelectric material with excellent intrinsic thermoelectric and mechanical properties and has received increasing attention from researchers in recent years. In this study, we have developed an ultrafast sintering method to prepare Ag 2 Se bulk materials combining the cold pressing process and the Joule-heating method, which can be completed in less than one minute. By modifying the sintering temperature, the electrical transport properties of the Ag 2 Se samples can be tuned. The ultrafast sintering process maintains the porous structure of the cold pressed samples, resulting in a significantly reduced thermal conductivity as low as 0.56 W/(m · K) at 300 K, which is ~44% lower than that of the Ag 2 Se bulk prepared by using the spark plasma sintering method. Eventually, a room-temperature zT value of ~0.66 is obtained in ultrafastsintered Ag 2 Se at 673 K, which is comparable to the room-temperature thermoelectric materials prepared by conventional methods. This work proposes a convenient and efficient method for sintering thermoelectric materials with promising thermoelectric performance.