物理学报2024,Vol.73Issue(10) :294-306.DOI:10.7498/aps.73.20240112

熔融旋甩制备Co掺杂TiNiCoxSn合金的热电性能

Thermoelectric properties of Co doped TiNiCoxSn alloys fabricated by melt spinning

何俊松 罗丰 王剑 杨士冠 翟立军 程林 刘虹霞 张艳 李艳丽 孙志刚 胡季帆
物理学报2024,Vol.73Issue(10) :294-306.DOI:10.7498/aps.73.20240112

熔融旋甩制备Co掺杂TiNiCoxSn合金的热电性能

Thermoelectric properties of Co doped TiNiCoxSn alloys fabricated by melt spinning

何俊松 1罗丰 2王剑 3杨士冠 1翟立军 1程林 1刘虹霞 1张艳 1李艳丽 2孙志刚 4胡季帆1
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作者信息

  • 1. 太原科技大学材料科学与工程学院,太原 030024;太原科技大学,山西省磁电功能材料与应用重点实验室,太原 030024
  • 2. 武汉理工大学,材料复合新技术国家重点实验室,武汉 430070
  • 3. 武汉理工大学襄阳示范区,湖北隆中实验室,襄阳 441000
  • 4. 太原科技大学材料科学与工程学院,太原 030024;太原科技大学,山西省磁电功能材料与应用重点实验室,太原 030024;武汉理工大学,材料复合新技术国家重点实验室,武汉 430070
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摘要

TiNiSn基half-Heusler高温热电材料具有较高的功率因子,但其也具有较高的晶格热导率,这极大地阻碍了其热电性能的提升.本文采用熔融旋甩快淬与放电等离子烧结工艺制备TiNiCoxSn(x=0-0.05)样品,研究磁性Co元素掺杂对材料的相组成、微观结构和热电性能.结果表明,该制备工艺能够直接获得纳米晶的TiNiCoxSn样品.在纳米晶影响下的样品的热导率明显低于块体材料的热导率,平均降幅约为17.8%.在Co掺杂后样品的晶粒尺寸进一步降低,与TiNiSn基体相比,TiNiCoxSn样品的热导率显著降低,最大降幅约为38.9%,其中晶格热导率最低值为3.19 W/(m.K),最大降幅约为42.6%.随着Co掺杂量x的增大TiNiCoxSn样品出现n/p转变,电导率随x增大而逐渐下降,电输运性能劣化,功率因子缓慢减小,其中TiNiSn样品在700 K时获得29.56 W/(m.K2)的最高功率因子.ZT值随Co掺杂量x的增大而逐渐降低,TiNiSn样品在900 K时的最大ZT值为0.48.本工作表明采用熔融旋甩制备工艺及磁性Co掺杂能够有效降低TiNiSn材料的热导率.

Abstract

Although TiNiSn-based half-Heusler thermoelectric materials obtain high power factors,their high lattice thermal conductivity greatly hinders the improvement of thermoelectric properties.In this work,TiNiCoxSn(x=0-0.05)samples are prepared by melt spinning combined with spark plasma sintering method,and their phase,microstructure and thermoelectric properties are studied.The XRD results show that the main phase of all samples is TiNiSn phase,and no any other impurity phases are found,indicating that the high purity single phase can be prepared by rapid quenching process combined with SPS process.In the solidification process,the large cooling rate(105-106 K/s)is conducive to obtaining the uniform nanocrystalline structure.The grains are closely packed,with grain sizes in a range of 200-600 nm.The grain sizes decrease to 50-400 nm for the Co-doping samples,which indicates that Co doping can reduce the grain size.For the x=0 sample,the thermal conductivity of the rapid quenching sample is significantly lower than that of bulk sample,with an average decrease of about 17.8%.Compared with the TiNiSn matrix,the Co-doping sample has the thermal conductivity that decreases significantly,and the maximum decrease can reach about 38.9%.The minimum value of lattice thermal conductivity of TiNiCoxSn samples is 3.19 W/(m·K).Therefore,Co doping can significantly reduce the κl values of TiNiCoxSn(x=0.01-0.05)samples.With the increase of Co doping amount x,n/p transition is observed in the TiNiCoxSn samples,resulting in gradually reducing the conductivity and the power factor,and finally deteriorating the electrical transport performance,of which,the TiNiSn sample obtains the highest power factor of 29.56 W/(m.K2)at 700 K.The ZT value decreases with the Co doping amount x increasing,and the maximum ZT value of TiNiSn sample at 900 K is 0.48.This work shows that the thermal conductivity of TiNiSn can be effectively reduced by using the melt spinning process and magnetic Co doping.

关键词

TiNiSn/热电材料/熔融旋甩/half-Heusler

Key words

TiNiSn/thermoelectric materials/melt spinning/half-Heusler

引用本文复制引用

基金项目

国家自然科学基金(12174297)

国家自然科学基金(12204342)

山西省基础研究计划(202103021224283)

山西省基础研究计划(202203021212323)

太原科技大学科研启动基金(20222015)

太原科技大学科研启动基金(20222002)

来晋工作优秀博士奖励项目(20222039)

来晋工作优秀博士奖励项目(20222040)

山西省高等学校科技创新项目(2022L288)

出版年

2024
物理学报
中国物理学会,中国科学院物理研究所

物理学报

CSTPCD北大核心
影响因子:1.038
ISSN:1000-3290
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