Toward nanophotonic platforms for solid-state $^{229}$Th nuclear clocks
Sandro Kraemer, Karen Mamian, Toby Bi, Shun Fujii, Jan de Haan + 16 more
TLDR
This paper proposes a nanophotonic platform for solid-state $^{229}$Th nuclear clocks, enhancing nuclear excitation for chip-scale frequency standards.
Key contributions
- Proposes a nanophotonic platform for solid-state $^{229}$Th nuclear clocks using high-Q fluoride resonators.
- Shows resonant field build-up in cavities significantly enhances nuclear excitation rates.
- Enables optical interrogation of $^{229}$Th at practical laser intensities for chip-scale devices.
- Presents a technological roadmap and initial proof-of-concept with $^{229}$Th implanted resonators.
Why it matters
This paper addresses the challenge of creating chip-scale solid-state nuclear clocks. It proposes a nanophotonic platform that significantly enhances nuclear excitation, paving the way for compact and scalable frequency standards.
Original Abstract
While the $^{229}$Th nuclear isomer has recently been observed and laser-excited, converting optical nuclear manipulation into a chip-scale solid-state frequency standard remains an open challenge. Here, we present a nanophotonic platform to realize an all-solid-state nuclear clock based on the low-energy isomeric transition of $^{229}$Th embedded in high-$Q$ fluoride photonic resonators. By coupling ensembles of thorium nuclei to confined optical modes, we show that resonant field build-up in the cavity can substantially enhance the nuclear excitation rate, enabling optical interrogation at practical laser intensities. We model the nuclei-photon interaction dynamics and outline a technological roadmap toward addressing this challenge, including resonator fabrication in fluoride crystals, thorium implantation, nuclear excitation with integrated lasers, and on-chip detection of vacuum-ultraviolet photons. As an initial proof of concept, we implant a crystalline fluoride whispering-gallery-mode resonator with $^{229}$Th and assess the impact of implantation-induced damage on resonator performance. Our platform leverages recent advances in materials integration and nanophotonics to chart a realistic route toward compact and scalable nuclear frequency standards.
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