次世代の宇宙探査用ライトセイル技術を開発(TU Delft and Brown University pioneer technology for next-generation lightsails in space exploration)

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2025-03-24 デルフト工科大学(TUDelft)

デルフト工科大学とブラウン大学の研究チームは、次世代宇宙探査に向けたライトセイル技術を共同開発中です。高強度・軽量素材の活用と光圧を最大限に活かす設計最適化により、より高速で効率的な推進を実現することを目指しています。また、折り紙構造に着想を得たキューブサットのデモ機開発も進行中で、将来の宇宙ミッションの効率化やコスト削減に貢献が期待されます。

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五角形のフォトニック結晶ミラー:ニューラルトポロジーの最適化により加速性を高めたスケーラブルなライトセイル Pentagonal photonic crystal mirrors: scalable lightsails with enhanced acceleration via neural topology optimization

Lucas Norder,Shunyu Yin,Matthijs H. J. de Jong,Francesco Stallone,Hande Aydogmus,Paolo M. Sberna,Miguel A. Bessa &Richard A. Norte
Nature Communications  Published:24 March 2025
DOI:https://doi.org/10.1038/s41467-025-57749-y

次世代の宇宙探査用ライトセイル技術を開発(TU Delft and Brown University pioneer technology for next-generation lightsails in space exploration)

Abstract

The Starshot Breakthrough Initiative aims to send gram-scale microchip probes to Alpha Centauri within 20 years, propelled by laser-driven lightsails at a fifth of light speed. This mission demands innovative lightsail materials with meter-scale dimensions, nanoscale thickness, and billions of nanoscale holes for enhanced reflectivity and reduced mass. Unlike the microchip payload, lightsail fabrication requires breakthroughs in optics, materials science, and structural engineering. Our study uses neural topology optimization, revealing a novel pentagonal lattice-based photonic crystal (PhC) reflector. The optimized designs significantly lower the acceleration times and, thereby, launch cost. Crucially, they also enabled orders-of-magnitude fabrication cost reduction. We fabricated a 60 × 60 mm2, 200 nm thick reflector with over a billion nanoscale features, achieving a 9000-fold cost reduction per m2. This represents the highest aspect ratio nanophotonic element to date. While stringent requirements remain for lightsails, scalable, cost-effective nanophotonics present promising solutions for next-generation space exploration.

0300航空・宇宙一般
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