Acta Optica Sinica, Volume. 44, Issue 19, 1925002(2024)

Research Progress of Thermal Emission Direction Control (Invited)

Qiang Li1、*, Yunbin Ying1, and Min Qiu2
Author Affiliations
  • 1State Key Laboratory of Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, Zhejiang , China
  • 2School of Engineering, Westlake University, Hangzhou 310024, Zhejiang , China
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    References(59)

    [5] An S, Shang W, Jiang M D et al. Human hand as a powerless and multiplexed infrared light source for information decryption and complex signal generation[J]. Proceedings of the National Academy of Sciences of the United States of America, 118, e2021077118(2021).

    [9] Wu X K, Li J L, Jiang Q Y et al. An all-weather radiative human body cooling textile[J]. Nature Sustainability, 6, 1446-1454(2023).

    [13] Zhu L X, Raman A P, Fan S H. Radiative cooling of solar absorbers using a visibly transparent photonic crystal thermal blackbody[J]. Proceedings of the National Academy of Sciences of the United States of America, 112, 12282-12287(2015).

    [15] Kang M H, Lee G J, Lee J H et al. Outdoor-useable, wireless/battery-free patch-type tissue oximeter with radiative cooling[J]. Advanced Science, 8, 2004885(2021).

    [16] Qiao H X, Huang Z Q, Wu J M et al. Scalable and durable Janus thermal cloak for all-season passive thermal regulation[J]. Device, 1, 100008(2023).

    [17] Carminati R, Greffet J J. Near-field effects in spatial coherence of thermal sources[J]. Physical Review Letters, 82, 1660-1663(1999).

    [21] Han S E, Norris D J. Beaming thermal emission from hot metallic bull’s eyes[J]. Optics Express, 18, 4829-4837(2010).

    [22] Park J H, Han S E, Nagpal P et al. Observation of thermal beaming from tungsten and molybdenum bull’s eyes[J]. ACS Photonics, 3, 494-500(2016).

    [25] Sakr E, Dimonte D, Bermel P. Metasurfaces with Fano resonances for directionally selective thermal emission[J]. MRS Advances, 1, 3307-3316(2016).

    [27] Ito K, Iizuka H. Directional thermal emission control by coupling between guided mode resonances and tunable plasmons in multilayered graphene[J]. Journal of Applied Physics, 120, 163105(2016).

    [30] Fleming J G, Lin S Y, El-Kady I et al. All-metallic three-dimensional photonic crystals with a large infrared bandgap[J]. Nature, 417, 52-55(2002).

    [31] Celanovic I, Perreault D, Kassakian J. Resonant-cavity enhanced thermal emission[J]. Physical Review B, 72, 075127(2005).

    [32] Lee B J, Fu C J, Zhang Z M. Coherent thermal emission from one-dimensional photonic crystals[J]. Applied Physics Letters, 87, 071904(2005).

    [33] Granier C H, Afzal F O, Min C J et al. Optimized aperiodic highly directional narrowband infrared emitters[J]. Journal of the Optical Society of America B, 31, 1316-1321(2014).

    [34] Li H, Wang J J, Ma Y T et al. Enhanced directional emission of monolayer tungsten disulfide (WS2) with robust linear polarization via one-dimensional photonic crystal (PhC) slab[J]. Nanophotonics, 9, 4337-4345(2020).

    [35] Sakotic Z, Krasnok A, Cselyuszka N et al. Berreman embedded eigenstates for narrow-band absorption and thermal emission[J]. Physical Review Applied, 13, 064073(2020).

    [36] Campione S, Marquier F, Hugonin J P et al. Directional and monochromatic thermal emitter from epsilon-near-zero conditions in semiconductor hyperbolic metamaterials[J]. Scientific Reports, 6, 34746(2016).

    [37] Campione S, Luk T S, Liu S et al. Realizing high-quality, ultralarge momentum states and ultrafast topological transitions using semiconductor hyperbolic metamaterials[J]. Journal of the Optical Society of America B, 32, 1809(2015).

    [38] Nordin L, Dominguez O, Roberts C M et al. Mid-infrared epsilon-near-zero modes in ultra-thin phononic films[J]. Applied Physics Letters, 111, 091105(2017).

    [40] Ying Y B, Ma B Z, Yu J B et al. Whole LWIR directional thermal emission based on ENZ thin films[J]. Laser & Photonics Reviews, 16, 2200018(2022).

    [41] Bhatia B, Leroy A, Shen Y C et al. Passive directional sub-ambient daytime radiative cooling[J]. Nature Communications, 9, 5001(2018).

    [42] Cho J W, Lee Y J, Kim J H et al. Directional radiative cooling via exceptional epsilon-based microcavities[J]. ACS Nano, 17, 10442-10451(2023).

    [43] Bae M, Kim D H, Kim S K et al. Transparent energy-saving windows based on broadband directional thermal emission[J]. Nanophotonics, 13, 749-761(2024).

    [44] Zhou J W, Chen T G, Tsurimaki Y et al. Angle-selective thermal emitter for directional radiative cooling and heating[J]. Joule, 7, 2830-2844(2023).

    [45] Kyoung J, Park D J, Byun S J et al. Epsilon-near-zero meta-lens for high resolution wide-field imaging[J]. Optics Express, 22, 31875-31883(2014).

    [48] Shahsafi A, Salman J, Perez B E R et al. Infrared polarizer based on direct coupling to surface plasmon polaritons[J]. Nano Letters, 20, 8483-8486(2020).

    [50] Li J C, Liu S, Wu S L et al. Coupling of epsilon-near-zero mode to mushroom-type metamaterial for optimizing infrared suppression and radiative cooling[J]. Photonic Sensors, 13, 230231(2022).

    [52] Zhu Y N, Zhou Y W, Qin B et al. Night-time radiative warming using the atmosphere[J]. Light: Science & Applications, 12, 268(2023).

    [53] Hwang J S, Xu J, Raman A P. Simultaneous control of spectral and directional emissivity with gradient epsilon-near-zero InAs photonic structures[J]. Advanced Materials, 35, 2302956(2023).

    [55] Zhang S J, Cao T, Tian Z. Progress on reconfigurable terahertz metasurface devices based on sulfide phase change materials[J]. Opto-Electronic Engineering, 50, 230142(2023).

    [57] Chu Q Q, Zhong F, Shang X H et al. Controlling thermal emission with metasurfaces and its applications[J]. Nanophotonics, 13, 1279-1301(2024).

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    Qiang Li, Yunbin Ying, Min Qiu. Research Progress of Thermal Emission Direction Control (Invited)[J]. Acta Optica Sinica, 2024, 44(19): 1925002

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    Paper Information

    Category: OPTOELECTRONICS

    Received: May. 13, 2024

    Accepted: Jun. 19, 2024

    Published Online: Oct. 9, 2024

    The Author Email: Li Qiang (qiangli@zju.edu.cn)

    DOI:10.3788/AOS241010

    CSTR:32393.14.AOS241010

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