Near-field radiative heat transfer between shifted graphene gratings

被引:2
|
作者
Luo, Minggang [1 ]
Jeyar, Youssef [1 ]
Guizal, Brahim [1 ]
Antezza, Mauro [1 ,2 ]
机构
[1] Univ Montpellier, Lab Charles Coulomb L2C, UMR CNRS 5221, F-34095 Montpellier, France
[2] Inst Univ France, 1 rue Descartes, F-75231 Paris 05, France
关键词
ENHANCEMENT; ENERGY;
D O I
10.1103/PhysRevB.109.195431
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We examine the near -field radiative heat transfer between finite -thickness planar fused silica slabs covered with graphene gratings, through the utilization of the Fourier modal method augmented with local basis functions (FMM-LBF), with a focus on the lateral shift effect (LSE). To do so, we propose and validate a minor modification of the FMM-LBF theory to account for the lateral shift. This approach goes far beyond the effective medium approximation, which cannot account for the lateral shift. We show that the heat flux can exhibit significant oscillations with the lateral shift, and at short separation, it can experience up to a 60-70% reduction compared with the aligned case. Such an LSE is found to be sensitive to the geometric factor d / D (separation distance to grating period ratio). When d / D > 1 (realized through large separation or small grating period), the two graphene gratings see each other as an effective whole rather than in detail, and thus, the LSE on heat transfer becomes less important. Therefore, we can clearly distinguish two asymptotic regimes for radiative heat transfer: the LSE regime, where a significant LSE is observed, and the non -LSE regime, where this effect is negligible. Furthermore, regardless of the lateral shift, the radiative heat flux shows a nonmonotonic dependence on the graphene chemical potential. That is, we can get an optimal radiative heat flux (peaking at similar to 0.3 eV chemical potential) by modulating the chemical potential in situ . This paper has the potential to unveil avenues for harnessing the LSE on radiative heat transfer in graphene-based nanodevices.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Demonstration of Strong Near-Field Radiative Heat Transfer between Nanostructures
    St-Gelais, Raphael
    Guha, Biswajeet
    Zhu, Linxiao
    Fan, Shanhui
    Lipson, Michal
    2014 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2014,
  • [42] Maximum near-field radiative heat transfer between thin films
    Basu, Soumyadipta
    Francoeur, Mathieu
    APPLIED PHYSICS LETTERS, 2011, 98 (24)
  • [43] Near-Field Radiative Heat Transfer between Disordered Multilayer Systems
    田鹏
    葛文宣
    李松松
    高雷
    蒋建华
    徐亚东
    Chinese Physics Letters, 2023, 40 (06) : 129 - 134
  • [44] Near-field radiative heat transfer between general materials and metamaterials
    ZHENG ZhiHeng & XUAN YiMin* School of Energy and Power Engineering
    Science Bulletin, 2011, (22) : 2312 - 2319
  • [45] Near-Field Radiative Heat Transfer between Disordered Multilayer Systems
    田鹏
    葛文宣
    李松松
    高雷
    蒋建华
    徐亚东
    Chinese Physics Letters, 2023, (06) : 129 - 134
  • [46] Near-field radiative heat transfer between clusters of dielectric nanoparticles
    Dong, J.
    Zhao, J. M.
    Liu, L. H.
    JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2017, 197 : 114 - 122
  • [47] Near-field radiative heat transfer between spherical micro particles
    Huang, Yong
    Liang, Xin-Gang
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2004, 25 (02): : 290 - 292
  • [48] Near-field radiative heat transfer between metamaterial thin films
    Basu, Soumyadipta
    Francoeur, Mathieu
    OPTICS LETTERS, 2014, 39 (05) : 1266 - 1269
  • [49] Near-field radiative heat transfer between moving anisotropic surfaces
    Wang, Yi-Xu
    Zhang, Yong
    Hao, Yun-Chao
    Cai, Zhi-Ming
    Yi, Hong-Liang
    JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2024, 315
  • [50] Near-Field Radiative Heat Transfer between Disordered Multilayer Systems
    Tian, Peng
    Ge, Wenxuan
    Li, Songsong
    Gao, Lei
    Jiang, Jianhua
    Xu, Yadong
    CHINESE PHYSICS LETTERS, 2023, 40 (06)