FUNDAMENTALS AND APPLICATIONS OF NEAR-FIELD RADIATIVE ENERGY TRANSFER

被引:77
作者
Park, Keunhan [1 ]
Zhang, Zhuomin [2 ]
机构
[1] Univ Rhode Isl, Dept Mech Ind & Syst Engn, Kingston, RI 02881 USA
[2] Georgia Inst Technol, GW Woodruff Sch Mech Engn, Atlanta, GA 30332 USA
来源
FRONTIERS IN HEAT AND MASS TRANSFER | 2013年 / 4卷 / 01期
基金
美国国家科学基金会;
关键词
thermal radiation; micro/nanoscale; radiative properties; thermophotovoltaics; nanoinstrumentation; nanomanufacturing;
D O I
10.5098/hmt.v4.1.3001
中图分类号
O414.1 [热力学];
学科分类号
摘要
This article reviews the recent advances in near-field radiative energy transfer, particularly in its fundamentals and applications. When the geometrical features of radiating objects or their separating distances fall into the sub-wavelength range, near-field phenomena such as photon tunneling and surface polaritons begin to play a key role in energy transfer. The resulting heat transfer rate can greatly exceed the blackbody radiation limit by several orders magnitude. This astonishing feature cannot be conveyed by the conventional theory of thermal radiation, generating strong demands in fundamental research that can address thermal radiation in the near field. Important breakthroughs of near-field thermal radiation are presented here, covering from the essential physics that will help better understand the basics of near-field thermal radiation to the most recent theoretical as well as experimental findings that will further promote the fundamental understanding. Applications of near-field thermal radiation in various fields are also discussed, including the radiative property manipulation, near-field thermophotovoltaics, nanoinstrumentation and nanomanufacturing, and thermal rectification.
引用
收藏
页数:26
相关论文
共 50 条
[31]   Upper limits to near-field radiative heat transfer: Generalizing the "blackbody" concept [J].
Miller, Owen D. ;
Rodriguez, Alejandro W. ;
Johnson, Steven G. .
ACTIVE PHOTONIC MATERIALS VIII, 2016, 9920
[32]   Enhanced Near-Field Radiative Heat Transfer between Graphene/hBN Systems [J].
Lu, Lu ;
Zhang, Bo ;
Ou, Han ;
Li, Bowen ;
Zhou, Kun ;
Song, Jinlin ;
Luo, Zixue ;
Cheng, Qiang .
SMALL, 2022, 18 (19)
[33]   Temperature dependence of near-field radiative heat transfer above room temperature [J].
Lucchesi, C. ;
Vaillon, R. ;
Chapuis, P-O .
MATERIALS TODAY PHYSICS, 2021, 21
[34]   Near-field radiative heat transfer enhancement by multilayers and gratings in the thermophotovoltaic system [J].
ZhiGuo Xu ;
ZhiFang Hu .
Science China Technological Sciences, 2023, 66 :2968-2977
[35]   NEAR-FIELD RADIATIVE TRANSFER BETWEEN HEAVILY DOPED SiGe AT ELEVATED TEMPERATURES [J].
Zhang, Z. M. ;
Enikov, E. T. ;
Makansi, T. .
PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2011, VOL 10, PTS A AND B, 2012, :283-291
[36]   Regulation of Near-Field Radiative Heat Transfer between Multilayer BP/hBN Heterostructures [J].
Chen, Lei ;
Song, Jinlin ;
Jin, Lin ;
Yao, Xinjie ;
Zhao, Hailong ;
Cheng, Qiang .
LANGMUIR, 2023, 39 (36) :12817-12825
[37]   A machine learning strategy for modeling and optimal design of near-field radiative heat transfer [J].
Wen, Shizheng ;
Dang, Chunzhuo ;
Liu, Xianglei .
APPLIED PHYSICS LETTERS, 2022, 121 (07)
[38]   Substrate effects on the near-field radiative heat transfer between two hBN films [J].
Zhang, Jihong ;
Yang, Bing ;
Yu, Kun ;
Zhang, Kaihua ;
Liu, Haotuo ;
Wu, Xiaohu .
AIP ADVANCES, 2023, 13 (04)
[39]   Near-field radiative heat transfer in three-body systems with periodic structures [J].
Kan, Y. H. ;
Zhao, C. Y. ;
Zhang, Z. M. .
PHYSICAL REVIEW B, 2019, 99 (03)
[40]   High resolution measurement of near-field radiative heat transfer enabled by nanomechanical resonators [J].
Giroux, Mathieu ;
Zhang, Chang ;
Snell, Nikaya ;
Mu, Gengyang ;
Stephan, Michel ;
St-Gelais, Raphael .
APPLIED PHYSICS LETTERS, 2021, 119 (17)