4.8 Article

Multiscale Photonic Emissivity Engineering for Relativistic Lightsail Thermal Regulation

期刊

NANO LETTERS
卷 22, 期 2, 页码 594-601

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.1c03273

关键词

Starshot; Lightsail; Photon Momentum; Infrared; Nanophotonics; Mie Resonance; Photonic Crystal Reflector; 2D Materials; Silicon Nitride; Molybdenum Disulfide

资金

  1. Breakthrough Initiatives, a division of the Breakthrough Prize Foundation
  2. National Science Foundation Graduate Research Fellowship [DGE-1650605, DGE2034835]
  3. National Science Foundation CAREER award [CBET-1845933]

向作者/读者索取更多资源

This research demonstrates the characteristics of nanophotonic photonic crystal slab reflectors and explores new possibilities for simultaneously controlling optical and thermal response in ultralight nanophotonic structures. The findings provide important insights into the significance of thermal management in lightsail design.
The Breakthrough Starshot Initiative aims to send a gram-scale probe to our nearest extrasolar neighbors using a laser-accelerated lightsail traveling at relativistic speeds. Thermal management is a key lightsail design objective because of the intense laser powers required but has generally been considered secondary to accelerative performance. Here, we demonstrate nanophotonic photonic crystal slab reflectors composed of 2H-phase molybdenum disulfide and crystalline silicon nitride, highlight the inverse relationship between the thermal band extinction coefficient and the lightsail's maximum temperature, and examine the trade-off between minimizing acceleration distance and setting realistic sail thermal limits, ultimately realizing a thermally endurable acceleration minimum distance of 23.3 Gm. We additionally demonstrate multiscale photonic structures featuring thermal-wavelength-scale Mie resonant geometries and characterize their broadband Mie resonance-driven emissivity enhancement and acceleration distance reduction. More broadly, our results highlight new possibilities for simultaneously controlling optical and thermal response over broad wavelength ranges in ultralight nanophotonic structures.

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