题名 | Performance degradation analysis and fabrication guidance of μ-TEG from material to device |
作者 | |
通讯作者 | Shen,Limei |
发表日期 | 2023-09-15
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DOI | |
发表期刊 | |
ISSN | 0196-8904
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EISSN | 1879-2227
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卷号 | 292 |
摘要 | Micro thermoelectric generator (μ-TEG) attracts more and more attention due to its small size and high power density. Many two-dimensional thermoelectric materials with high performance have facilitated the development of μ-TEG. However, the performance of μ-TEG fabricated by these great thermoelectric materials is significantly degraded due to size effect, interfacial effects (include contact effect and boundary effect) and structure effect. To accurately assess the performance degradation degree from material to μ-TEG and guide the device fabrication, an experiment-verified mathematical model considering interfacial and size effects is proposed. Firstly, the phonon/electron temperature distribution in thermoelectric leg of μ-TEG is analyzed to investigate the device-level thermoelectric properties of material. Then based on the device-level thermoelectric properties, the actual power generation performance model of μ-TEG is established to conduct the influence analysis of these effects (boundary, size, contact and structure effects) on material and device. Finally, the thermoelectric leg thickness (H) is optimized to realize optimal power generation. The study results reveal that boundary and size effects weaken the device-level thermoelectric properties, and the reduction trend is more obvious when H is smaller, especially when H ≤ 20 μm. The decrease from the material intrinsic figure of merit ((ZT)) to the device figure of merit ((ZT)) is owing to the boundary effect, structure effect and contact effect, and the dominant factor of this decrease changes from structure effect (H<7 μm)to contact effect (H ≥ 7 μm) as H increases, which points to a main optimization direction for (ZT) for different H. As for contact effect, the electrical contact resistivity (r) has a more significant impact on weakening the performance of μ-TEG than thermal contact resistivity (r), and their optimization goals are explored (r ≤ 5.1 × 10 Ω·m, r ≤ 9.3 × 10 K·m/W). At given electrical and thermal contact resistivity, there exists an optimal H for achieving the optimal power generation (P) and a large range of H for achieving 95%P, and the optimal H increases with increasing electrical and thermal contact resistivity. This study can reduce the processing difficulty and save time and economic costs of μ-TEG fabrication, which can avoid the blind fabrication of μ-TEG. |
关键词 | |
相关链接 | [Scopus记录] |
收录类别 | |
语种 | 英语
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学校署名 | 其他
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资助项目 | National Natural Science Foundation of China[52176007];Science, Technology and Innovation Commission of Shenzhen Municipality[JCYJ20210324115611030];
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WOS研究方向 | Thermodynamics
; Energy & Fuels
; Mechanics
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WOS类目 | Thermodynamics
; Energy & Fuels
; Mechanics
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WOS记录号 | WOS:001039116000001
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出版者 | |
EI入藏号 | 20232814382551
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EI主题词 | Size determination
; Structural properties
; Thermoelectric equipment
; Thermoelectric power
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EI分类号 | Structural Design:408
; Thermoelectric Energy:615.4
; Materials Science:951
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ESI学科分类 | ENGINEERING
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Scopus记录号 | 2-s2.0-85164317004
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来源库 | Scopus
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引用统计 |
被引频次[WOS]:2
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成果类型 | 期刊论文 |
条目标识符 | http://sustech.caswiz.com/handle/2SGJ60CL/559611 |
专题 | 工学院_材料科学与工程系 |
作者单位 | 1.School of Energy and Power Engineering,Huazhong University of Science and Technology,Wuhan,430074,China 2.Shenzhen Huazhong University of Science and Technology Research Institute,Shenzhen,518057,China 3.Department of Materials Science and Engineering,Southern University of Science and Technology,Shenzhen,Guangdong,518055,China 4.Department of Energy and Power Engineering,School of Mechanical Engineering,Beijing Institute of Technology,Beijing,100081,China |
推荐引用方式 GB/T 7714 |
Jiang,Yong,Shen,Limei,Wang,Yupeng,et al. Performance degradation analysis and fabrication guidance of μ-TEG from material to device[J]. Energy Conversion and Management,2023,292.
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APA |
Jiang,Yong,Shen,Limei,Wang,Yupeng,Song,Mengjie,&Chen,Huanxin.(2023).Performance degradation analysis and fabrication guidance of μ-TEG from material to device.Energy Conversion and Management,292.
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MLA |
Jiang,Yong,et al."Performance degradation analysis and fabrication guidance of μ-TEG from material to device".Energy Conversion and Management 292(2023).
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