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$^{229}\mathrm{ThF}_4$ thin films for solid-state nuclear clocks
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abstract
After nearly fifty years of searching, the vacuum ultraviolet $^{229}$Th nuclear isomeric transition has recently been directly laser excited [1,2] and measured with high spectroscopic precision [3]. Nuclear clocks based on this transition are expected to be more robust [4,5] than and may outperform [6,7] current optical atomic clocks. They also promise sensitive tests for new physics beyond the standard model [5,8,9]. In light of these important advances and applications, a dramatic increase in the need for $^{229}$Th spectroscopy targets in a variety of platforms is anticipated. However, the growth and handling of high-concentration $^{229}$Th-doped crystals [5] used in previous measurements [1-3,10] are challenging due to the scarcity and radioactivity of the $^{229}$Th material. Here, we demonstrate a potentially scalable solution to these problems by demonstrating laser excitation of the nuclear transition in $^{229}$ThF$_4$ thin films grown with a physical vapor deposition process, consuming only micrograms of $^{229}$Th material. The $^{229}$ThF$_4$ thin films are intrinsically compatible with photonics platforms and nanofabrication tools for integration with laser sources and detectors, paving the way for an integrated and field-deployable solid-state nuclear clock with radioactivity up to three orders of magnitude smaller than typical \thor-doped crystals [1-3,10]. The high nuclear emitter density in $^{229}$ThF$_4$ also potentially enables quantum optics studies in a new regime. Finally, we describe the operation and present the estimation of the performance of a nuclear clock based on a defect-free ThF$_4$ crystal.
Forward citations
Cited by 4 Pith papers
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Laser-Induced Quenching of the Th-229 Nuclear Clock Isomer in Calcium Fluoride
Laser light quenches the 229Th isomer in CaF2, shortening its lifetime threefold at room temperature; the effect is wavelength-independent below 420 nm, temperature-activated, and absent above 729 nm.
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Photo-Induced Quenching of the 229Th Isomer in a Solid-State Host
Off-resonant VUV light relaxes the 229Th isomer in LiSrAlF6 with a measured cross-section of about 0.3 megabarn, likely by opening a defect-mediated internal conversion channel.
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Resonance nuclear excitation of the $^{229}$Th nucleus via electronic bridge process in Th~II
Near-degenerate electron level pairs in Th+ enable a resonant electronic-bridge route to excite the 229Th nuclear isomer and shorten its lifetime, with enhancement factors up to ~10^6.
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Using the Th III Ion for a Nuclear Clock and Searches for New Physics
Predicted 10,000-fold electronic-bridge enhancement for exciting the 229Th nuclear clock transition in Th III, plus a 1.7-times lifetime reduction and strong new-physics sensitivity factors.
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