超冷 LiCr:通向顺磁极性分子量子气体的新途径

S. Finelli, A. Ciamei, B. Restivo, M. Schemmer, A. Cosco, M. Inguscio, A. Trenkwalder, K. Zaremba-Kopczyk, M. Gronowski, M. Tomza, M. Zaccanti
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摘要

双极性分子的量子气体是各种跨学科应用的诱人框架,包括量子模拟和计算、受控量子化学和精密测量。通过实验和理论的联合研究,我们在此探索了一类结合了碱锂和铬过渡金属元素的新型超冷顺磁性极性分子。我们以特定的玻色同素异形体 6Li53Cr 为重点,利用母原子混合物的费米统计和最近发现的合适费什巴赫共振,在锂铬电子基态 X6Σ+ 的最小束缚无旋转水平内制备了峰值相空间密度超过 0.1 的多达 50×103 超冷锂铬分子。通过开发新的探测方法,我们彻底描述了分子气体的特征,证明了锂铬二聚体的顺磁性及其量子态的精确控制。我们研究了它们在非弹性过程中的稳定性,并确定了纯锂铬样品寿命超过 0.2 秒的参数区域。与此同时,我们采用了最先进的量子化学计算方法来精确预测锂铬基态和激发电子态的特性。该模型能够再现实验中的锂铬高自旋散射长度,使我们能够确定将弱结合锂铬二聚体相干转移到其绝对基态的有效路径,以及随后对其进行光学操作的合适转变。我们的研究确立了锂铬是实现具有显著电偶极矩(3.3 D)和磁偶极矩(5μB)的双极性分子超冷气体的主要候选物质。 美国物理学会出版 2024
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Ultracold LiCr : A New Pathway to Quantum Gases of Paramagnetic Polar Molecules
Quantum gases of doubly polar molecules represent appealing frameworks for a variety of cross-disciplinary applications, encompassing quantum simulation and computation, controlled quantum chemistry, and precision measurements. Through a joint experimental and theoretical study, here we explore a novel class of ultracold paramagnetic polar molecules combining lithium alkali and chromium transition metal elements. Focusing on the specific bosonic isotopologue 6Li53Cr, leveraging on the Fermi statistics of the parent atomic mixture and on suitable Feshbach resonances recently discovered, we produce up to 50×103 ultracold LiCr molecules at peak phase-space densities exceeding 0.1, prepared within the least bound rotationless level of the LiCr electronic ground state X6Σ+. By also developing new probing methods, we thoroughly characterize the molecular gas, demonstrating the paramagnetic nature of LiCr dimers and the precise control of their quantum state. We investigate their stability against inelastic processes and identify a parameter region where pure LiCr samples exhibit lifetimes exceeding 0.2 s. Parallel to this, we employ state-of-the-art quantum chemical calculations to accurately predict the properties of LiCr ground and excited electronic states. This model, able to reproduce the experimental Li-Cr high-spin, scattering length, allows us to identify both efficient paths to coherently transfer weakly bound LiCr dimers to their absolute ground state, and suitable transitions for their subsequent optical manipulation. Our studies establish Li-Cr as a prime candidate to realize ultracold gases of doubly polar molecules with significant electric (3.3 D) and magnetic (5μB) dipole moments. Published by the American Physical Society 2024
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