副教授 硕士生导师
招生学科专业:
物理学 -- 【招收硕士研究生】 -- 物理学院
性别:女
毕业院校:南京大学
学历:研究生(博士)毕业
学位:理学博士学位
所在单位:物理学院
办公地点:理学楼409
联系方式:youngmeizhang@163.com
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DOI码:10.1103/PhysRevB.109.245427
发表刊物:PHYSICAL REVIEW B
摘要:Using the nonequilibrium Green’s function formalism, we propose a general microscopic framework to investigate the radiative heat transfer (RHT) between coplanar objects with a square lattice. We employ the obtained formulas to two-dimensional (2D) metal configurations with a tight-binding model and the Drude model. Our results reveal that the RHT between coplanar 2D metals is significantly larger than black-body
radiation in both the near and far fields, leading to a global super-Planckian RHT. As the separation distance increases, the heat flux density exhibits a rapid decrease in the near field, followed by a slower decrease and eventual 1/d dependence in the far field, while maintaining a much higher magnitude than black-body radiation. Evanescent waves dominate the heat transfer in the near field while propagating waves dominate the far field.
Surprisingly, the propagating heat flux remains almost constant over a wide range of distances, resulting in a super-Planckian behavior in the far field. The dispersion relation of the spectrum function reveals distinct contributions from propagating and evanescent waves, with possible origins from surface plasmon resonance. These findings provide insights into the unique characteristics of RHT between coplanar 2D metals and highlight
the potential for achieving enhanced heat transfer beyond the black-body limit. Our method is applicable to any coplanar objects with square lattices and paves the way for expanded investigations into various lattice geometries.
论文编号:PhysRevB109, 245427
学科门类:理学
文献类型:J
卷号:109
期号:245427
是否译文:否
发表时间:2024-06-24
收录刊物:SCIE