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Nicole Walter

Publications and source records attributed to Nicole Walter.

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Spectroscopic characterization of the a$^3Π$ state of aluminum monofluoride

Spectroscopic studies of aluminum monofluoride (AlF) have revealed its highly favorable properties for direct laser cooling. All $Q$ lines of the strong A$^1Π$ $\leftarrow$ X$^1Σ^+$ transition around 227~nm are rotationally closed and thereby suitable for the main cooling cycle. The same holds for the narrow, spin-forbidden a$^3Π$ $\leftarrow$ X$^1Σ^+$ transition around 367 nm which has a recoil limit in the micro Kelvin range. We here report on the spectroscopic characterization of the lowest rotational levels in the a$^3Π$ state of AlF for $v=0-8$ using a jet-cooled, pulsed molecular beam. An accidental AC Stark shift is observed on the a$^3Π_0, v=4$ $\leftarrow$ X$^1Σ^+, v=4$ band. By using time-delayed ionization for state-selective detection of the molecules in the metastable a$^3Π$ state at different points along the molecular beam, the radiative lifetime of the a$^3Π_1, v=0, J=1$ level is experimentally determined as $τ=1.89 \pm 0.15$~ms. A laser/radio-frequency multiple resonance ionization scheme is employed to determine the hyperfine splittings in the a$^3Π_1, v=5$ level. The experimentally derived hyperfine parameters are compared to the outcome of quantum chemistry calculations. A spectral line with a width of 1.27 kHz is recorded between hyperfine levels in the a$^3Π, v=0$ state. These measurements benchmark the electronic potential of the a$^3Π$ state and yield accurate values for the photon scattering rate and for the elements of the Franck-Condon matrix of the a$^3Π$ $-$ X$^1Σ^+$ system.

physics.chem-ph

Spectroscopic characterization of singlet-triplet doorway states of aluminum monofluoride

Aluminum monofluoride (AlF) possesses highly favorable properties for laser cooling, both via the A$^1\Pi$ and a$^3\Pi$ states. Determining efficient pathways between the singlet and the triplet manifold of electronic states will be advantageous for future experiments at ultralow temperatures. The lowest rotational levels of the A$^1\Pi, v=6$ and b$^3\Sigma^+, v=5$ states of AlF are nearly iso-energetic and interact via spin-orbit coupling. These levels thus have a strongly mixed spin-character and provide a singlet-triplet doorway. We here present a hyperfine resolved spectroscopic study of the A$^1\Pi, v=6$ // b$^3\Sigma^+, v=5$ perturbed system in a jet-cooled, pulsed molecular beam. From a fit to the observed energies of the hyperfine levels, the fine and hyperfine structure parameters of the coupled states, their relative energies as well as the spin-orbit interaction parameter are determined. The standard deviation of the fit is about 15 MHz. We experimentally determine the radiative lifetimes of selected hyperfine levels by time-delayed ionization, Lamb dip spectroscopy and accurate measurements of the transition lineshapes. The measured lifetimes range between 2 ns and 200 ns, determined by the degree of singlet-triplet mixing for each level.

quant-ph

Characterisation of the $b^3Σ^+, v=0$ State and Its Interaction with the $A^1Π$ State in Aluminium Monofluoride

Recently, we determined the detailed energy level structure of the $X^1Σ^+$, $A^1Π$ and $a^3Π$ states of AlF that are relevant to laser cooling and trapping experiments. Here, we investigate the $b^3Σ^+, v=0$ state of the AlF molecule. A rotationally-resolved (1+2)-REMPI spectrum of the $b^3Σ^+, v'=0 \leftarrow a^3Π, v''=0$ band is presented and the lifetime of the $b^3Σ^+, v=0$ state is measured to be 190(2)~ns. Hyperfine-resolved, laser-induced fluorescence spectra of the $b^3Σ^+, v'=0 \leftarrow X^1Σ^+, v''=1$ and the $b^3Σ^+, v'=0 \leftarrow a^3Π, v''=0$ bands are recorded to determine fine- and hyperfine structure parameters. The interaction between the $b^3Σ^+, v=0$ and the nearby $A^1Π$ state is studied and the magnitude of the spin-orbit coupling between the two electronic states is derived using three independent methods to give a consistent value of 10(1)~cm$^{-1}$. The triplet character of the $A$ state causes an $A\rightarrow a$ loss from the main $A-X$ laser cooling cycle below the 10$^{-6}$ level.

physics.atom-ph