Pentagonal Photonic Crystal Mirrors: Scalable Lightsails with Enhanced Acceleration via Neural Topology Optimization
L. Norder, S. Yin, M. J. de Jong, F. Stallone, H. Aydogmus, P. M., Sberna, M. A. Bessa, R. A. Norte

TL;DR
This paper introduces a novel pentagonal photonic crystal reflector optimized via neural topology methods, significantly reducing costs and improving the performance of lightsails for interstellar probes.
Contribution
It presents a new neural topology optimization approach to design scalable, cost-effective photonic crystal lightsails with complex nanostructures for space propulsion.
Findings
Designed a pentagonal lattice photonic crystal reflector.
Achieved a 9,000-fold cost reduction per square meter.
Fabricated a large, nanostructured reflector with billions of features.
Abstract
The Starshot Breakthrough Initiative aims to send one-gram microchip probes to Alpha Centauri within 20 years, using gram-scale lightsails propelled by laser-based radiation pressure, reaching velocities nearing a fifth of light speed. This mission requires lightsail materials that challenge the fundamentals of nanotechnology, requiring innovations in optics, material science and structural engineering. Unlike the microchip payload, which must be minimized in every dimension, such lightsails need meter-scale dimensions with nanoscale thickness and billions of nanoscale holes to enhance reflectivity and reduce mass. Our study employs neural topology optimization, revealing a novel pentagonal lattice-based photonic crystal (PhC) reflector. The optimized designs shorten acceleration times, therefore lowering launch costs significantly. Crucially, these designs also enable lightsail…
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Taxonomy
TopicsPhotonic Crystals and Applications · Adaptive optics and wavefront sensing · Optical Coatings and Gratings
