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类施主效应调控与高择优取向织构提升n型Bi2(Te,Se)3材料热电性能(英文)

Realizing high-efficiency thermoelectric module by suppressing donor-like effect and improving preferred orientation in n-type Bi2(Te, Se)3

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【作者】 李奕辰白树林文熠赵哲王磊刘世博郑俊卿王斯琦刘姗高德政刘东锐朱英才曹茜高翔谢鸿耀赵立东

【Author】 Yichen Li;Shulin Bai;Yi Wen;Zhe Zhao;Lei Wang;Shibo Liu;Junqing Zheng;Siqi Wang;Shan Liu;Dezheng Gao;Dongrui Liu;Yingcai Zhu;Qian Cao;Xiang Gao;Hongyao Xie;Li-Dong Zhao;School of Materials Science and Engineering, Beihang University;Tianmushan Laboratory;Huabei Cooling Device Co.LTD.;Center for High Pressure Science and Technology Advanced Research(HPSTAR);

【通讯作者】 谢鸿耀;赵立东;

【机构】 School of Materials Science and Engineering, Beihang UniversityTianmushan LaboratoryHuabei Cooling Device Co.LTD.Center for High Pressure Science and Technology Advanced Research(HPSTAR)

【摘要】 Thermoelectric materials have a wide range of application because they can be directly used in refrigeration and power generation. And the Bi2Te3 stand out because of its excellent thermoelectric performance and are used in commercial thermoelectric devices. However, n-type Bi2Te3 has seriously hindered the development of Bi2Te3-based thermoelectric devices due to its weak mechanical properties and inferior thermoelectric performance. Therefore, it is urgent to develop a high-performance n-type Bi2Te3 polycrystalline. In this work, we employed interstitial Cu and the hot deformation process to optimize the thermoelectric properties of Bi2Te2.7Se0.3, and a high-performance thermoelectric module was fabricated based on this material. Our combined theoretical and experimental effort indicates that the interstitial Cu reduce the defect density in the matrix and suppresses the donor-like effect, leading to a lattice plainification effect in the material. In addition, the two-step hot deformation process significantly improves the preferred orientation of the material and boosts the mobility. As a result, a maximum ZT of 1.27 at 373 K and a remarkable high ZTave of 1.22 across the temperature range of 300–425 K are obtained. The thermoelectric generator(TEG, 7-pair) and thermoelectric cooling(TEC, 127-pair) modules were fabricated with our n-type textured Cu0.01Bi2Te2.7Se0.3 coupled with commercial p-type Bi2Te3. The TEC module demonstrates superior cooling efficiency compared with the commercial Bi2Te3 device, achieving a ΔT of 65 and 83.4 K when the hot end temperature at 300 and 350 K, respectively. In addition, the TEG module attains an impressive conversion efficiency of 6.5% at a ΔT of 225 K, which is almost the highest value among the reported Bi2Te3-based TEG modules.

【Abstract】 Thermoelectric materials have a wide range of application because they can be directly used in refrigeration and power generation. And the Bi2Te3 stand out because of its excellent thermoelectric performance and are used in commercial thermoelectric devices. However, n-type Bi2Te3 has seriously hindered the development of Bi2Te3-based thermoelectric devices due to its weak mechanical properties and inferior thermoelectric performance. Therefore, it is urgent to develop a high-performance n-type Bi2Te3 polycrystalline. In this work, we employed interstitial Cu and the hot deformation process to optimize the thermoelectric properties of Bi2Te2.7Se0.3, and a high-performance thermoelectric module was fabricated based on this material. Our combined theoretical and experimental effort indicates that the interstitial Cu reduce the defect density in the matrix and suppresses the donor-like effect, leading to a lattice plainification effect in the material. In addition, the two-step hot deformation process significantly improves the preferred orientation of the material and boosts the mobility. As a result, a maximum ZT of 1.27 at 373 K and a remarkable high ZTave of 1.22 across the temperature range of 300–425 K are obtained. The thermoelectric generator(TEG, 7-pair) and thermoelectric cooling(TEC, 127-pair) modules were fabricated with our n-type textured Cu0.01Bi2Te2.7Se0.3 coupled with commercial p-type Bi2Te3. The TEC module demonstrates superior cooling efficiency compared with the commercial Bi2Te3 device, achieving a ΔT of 65 and 83.4 K when the hot end temperature at 300 and 350 K, respectively. In addition, the TEG module attains an impressive conversion efficiency of 6.5% at a ΔT of 225 K, which is almost the highest value among the reported Bi2Te3-based TEG modules.

【关键词】 Bi2Te3Texture engineeringTECTEGDonor-like effect
【Key words】 Bi2Te3Texture engineeringTECTEGDonor-like effect
【基金】 supported by the National Science Fund for Distinguished Young Scholars (51925101);the National Natural Science Foundation of China (52250090, 52371208, 52002042, 51772012, 51571007, and 12374023);Beijing Natural Science Foundation (JO18004);the 111 Project (B17002);the support from the Tencent Xplorer Prize;partially supported by the EPIC facility of Northwestern University’s NUANCE Center
  • 【文献出处】 Science Bulletin ,科学通报(英文) , 编辑部邮箱 ,2024年11期
  • 【分类号】TB34
  • 【下载频次】8
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