These rings are too original to not say yes to! 💍
in a diamond pavé-set bezel, which she helped to pick out, shifted engagement-ring standards even more.
Fortunately, there are a plethora of unconventional options for the accessory that matters so much. Styles like the solitaire offer the same focus on a singular stone as any traditional ring, but the versatility in setting adds the It factor that sets your piece apart. Meanwhile, rings equipped with three stones are not only statement-making but also designed to symbolize the couple's past, present, and future, thereby heightening their sentimental value.
Coming in four metals — platinum, rose gold, yellow gold, and white gold — this oval engagement ring features two stunning side stones that create a nice contrast with the brand's created diamond.
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Excitation and probing of low-energy nuclear states at high-energy storage rings$^{229}\mathrm{Th}$ with a low-lying nuclear isomeric state is an essential candidate for a nuclear clock as well as many other applications. Laser excitation of the isomeric state has been a long-standing goal. With relativistic $^{229}\mathrm{Th}$ ions in storage rings, high-power lasers with wavelengths in the visible range or longer can be used to achieve high excitation rates of $^{229}\mathrm{Th}$ isomers. This can be realized through direct resonant excitation or excitation via an intermediate nuclear or electronic state, facilitated by the tunability of both the laser-beam and ion-bunch parameters. Unique opportunities are offered by highly charged $^{229}\mathrm{Th}$ ions due to the nuclear-state mixing. The significantly reduced isomeric-state lifetime corresponds to a much higher excitation rate for direct resonant excitation. Importantly, we propose electric dipole transitions changing both the electronic and nuclear states that are opened by the nuclear hyperfine mixing. We suggest using them for efficient isomer excitation in Li-like $^{229}\mathrm{Th}$ ions, via stimulated Raman adiabatic passage or single-laser excitation. We also propose schemes for probing the isomers, utilizing nuclear radiative decay or laser spectroscopy on electronic transitions, through which the isomeric-state energy can be determined with an orders-of-magnitude higher precision than the current value. The schemes proposed here for $^{229}\mathrm{Th}$ could also be adapted to low-energy nuclear states in other nuclei, such as $^{229}\mathrm{Pa}$.
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