Enhancing Near-Field Radiative Heat Transfer between Dissimilar Dielectric Media by Coupling Surface Phonon Polaritons to Graphene’s Plasmons

IF 6.5 1区 物理与天体物理 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY ACS Photonics Pub Date : 2024-10-04 DOI:10.1021/acsphotonics.4c00963
Mehran Habibzadeh, Md. Shofiqul Islam, Philippe K. Chow, Sheila Edalatpour
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Abstract

Dielectric media are very promising for near-field radiative heat transfer (NFRHT) applications as these materials can thermally emit surface phonon polaritons (SPhPs) resulting in large and quasi-monochromatic heat fluxes. Near-field radiative heat flux between dissimilar dielectric media is much smaller than that between similar dielectric media and is also not quasi-monochromatic. This is due to the mismatch of the SPhP frequencies of the two heat-exchanging dielectric media. Here, we experimentally demonstrate that NFRHT between dissimilar dielectric media increases substantially when a graphene sheet is deposited on the medium with a smaller SPhP frequency. An enhancement of ∼2.7 to 3.2 folds is measured for the heat flux between SiC and LiF separated by a vacuum gap of size ∼100–140 nm when LiF is covered by a graphene sheet. This enhancement is due to the coupling of SPhPs and surface plasmon polaritons (SPPs). The SPPs of graphene are coupled to the SPhPs of LiF resulting in coupled SPhP-SPPs with a dispersion branch monotonically increasing with the wavevector. This monotonically increasing branch of dispersion relation intersects the dispersion branch of the SPhPs of SiC causing the coupling of the surface modes across the vacuum gap, which resonantly increases the heat flux at the SPhP frequency of SiC. This surface phonon-plasmon coupling also makes NFRHT quasi-monochromatic, which is highly desired for applications such as near-field thermophotovoltaics and thermophotonics. This study experimentally demonstrates that graphene is a very promising material for tuning the magnitude and spectrum of NFRHT between dissimilar dielectric media.

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通过将表面声子极化子与石墨烯的质子耦合,增强不同介质间的近场辐射热传递
介质介质在近场辐射传热(NFRHT)应用中大有可为,因为这些材料可以热发射表面声子极化子(SPhPs),从而产生大量准单色热通量。不同介电介质之间的近场辐射热通量远小于相似介电介质之间的近场辐射热通量,而且也不是准单色的。这是由于两种热交换介质的 SPhP 频率不匹配造成的。在此,我们通过实验证明,当石墨烯薄片沉积在 SPhP 频率较小的介质上时,不同介质间的 NFRHT 会大幅增加。当石墨烯薄片覆盖在尺寸为 100-140 nm 的 LiF 上时,被真空间隙隔开的 SiC 和 LiF 之间的热通量被测量到增强了 2.7 到 3.2 倍。这种增强是由于 SPhPs 和表面等离子体极化子 (SPPs) 的耦合。石墨烯的 SPPs 与 LiF 的 SPhPs 相耦合,产生了耦合 SPhP-SPPs,其色散分支随波矢量单调递增。这一单调递增的色散关系分支与碳化硅 SPhPs 的色散分支相交,导致表面模式在真空间隙中耦合,从而在碳化硅的 SPhP 频率上共振增加了热通量。这种表面声子-等离子体耦合还使 NFRHT 成为准单色性,而这正是近场热光电和热光子等应用所亟需的。这项研究通过实验证明,石墨烯是一种非常有前途的材料,可用于调整不同介电介质之间的 NFRHT 的大小和频谱。
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来源期刊
ACS Photonics
ACS Photonics NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
11.90
自引率
5.70%
发文量
438
审稿时长
2.3 months
期刊介绍: Published as soon as accepted and summarized in monthly issues, ACS Photonics will publish Research Articles, Letters, Perspectives, and Reviews, to encompass the full scope of published research in this field.
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