论文标题
多原子分子中的多价光循环中心
Multivalent optical cycling centers in polyatomic molecules
论文作者
论文摘要
多原子分子的光学控制有望在精确度量,基本化学,量子信息和多体科学方面提供新的机会。当代实验和理论工作主要集中在循环光子上,通过激发局部到碱性地球(第2组)类似金属中心的单个电子。在本手稿中,我们考虑了具有多电子自由度的多原子分子中光学循环的途径,这是由两个或多个循环电子定位于$ p $ block的转换后金属和金属体(组13、14和15)中心的途径。我们表征了使用量子量子化学方法的几个原型候选者的电子结构和旋转式分支。尽管内部复杂性增加和具有挑战性的设计参数,但我们发现具有高对角,可见和近红外过渡的准封闭光子循环方案的几个分子。此外,我们确定了具有多电子循环中心的运动性控制和激光冷却多原子分子的新型启发式方法。我们的结果有助于阐明光学活性物种中杂交,排斥和离子性之间的相互作用,并为使用具有复杂电子结构的多原子分子作为量子科学和测量的资源提供了第一步。
Optical control of polyatomic molecules promises new opportunities in precision metrology, fundamental chemistry, quantum information, and many-body science. Contemporary experimental and theoretical efforts have mostly focused on cycling photons via excitation of a single electron localized to an alkaline earth (group 2)-like metal center. In this manuscript, we consider pathways towards optical cycling in polyatomic molecules with multi-electron degrees of freedom, which arise from two or more cycling electrons localized to $p$-block post-transition metal and metalloid (group 13, 14, and 15) centers. We characterize the electronic structure and rovibrational branching of several prototypical candidates using ab initio quantum chemical methods. Despite increased internal complexity and challenging design parameters, we find several molecules possessing quasi-closed photon cycling schemes with highly diagonal, visible and near-infrared transitions. Furthermore, we identify new heuristics for engineering optically controllable and laser-coolable polyatomic molecules with multi-electron cycling centers. Our results help elucidate the interplay between hybridization, repulsion, and ionicity in optically active species and provide a first step towards using polyatomic molecules with complex electronic structure as a resource for quantum science and measurement.