论文标题
工程在波导量子电动力学中的巨型人工原子的水平结构
Engineering the Level Structure of a Giant Artificial Atom in Waveguide Quantum Electrodynamics
论文作者
论文摘要
数十年来,量子水平的工程轻型相互作用一直是追求量子光学元件的核心。传统上,这是通过将发射器(通常是天然原子和离子)耦合到量化光学和微波腔中的电磁场的。在这些系统中,发射极近似为理想的偶极子,因为其物理大小比光的波长小的数量级。最近,由超导电路制成的人造原子使光结合的新边界启用了新的边界,包括研究“巨型”原子的研究,这些原子无法近似为简单的偶极子。在这里,我们探索了一个巨大的人造原子的新实现,该实现是由沿开放传输线的多个点传播微波的transmon Qubit形成的。这种耦合的性质使量子辐射场会干扰自身,从而导致一些惊人的巨大原子效应。例如,我们观察到量子能量水平与传输线的电磁模式的强频依赖性耦合。结合原位调节量子能量水平的能力,我们表明我们可以将多个量子跃迁的相对耦合速率修改不仅仅是一个数量级。通过这样做,我们设计了一个可稳定的激发态,使我们能够操作巨型Transmon作为有效的Lambda系统,我们清楚地证明了电磁诱导的透明度。
Engineering light-matter interactions at the quantum level has been central to the pursuit of quantum optics for decades. Traditionally, this has been done by coupling emitters, typically natural atoms and ions, to quantized electromagnetic fields in optical and microwave cavities. In these systems, the emitter is approximated as an idealized dipole, as its physical size is orders of magnitude smaller than the wavelength of light. Recently, artificial atoms made from superconducting circuits have enabled new frontiers in light-matter coupling, including the study of "giant" atoms which cannot be approximated as simple dipoles. Here, we explore a new implementation of a giant artificial atom, formed from a transmon qubit coupled to propagating microwaves at multiple points along an open transmission line. The nature of this coupling allows the qubit radiation field to interfere with itself leading to some striking giant-atom effects. For instance, we observe strong frequency-dependent couplings of the qubit energy levels to the electromagnetic modes of the transmission line. Combined with the ability to in situ tune the qubit energy levels, we show that we can modify the relative coupling rates of multiple qubit transitions by more than an order of magnitude. By doing so, we engineer a metastable excited state, allowing us to operate the giant transmon as an effective lambda system where we clearly demonstrate electromagnetically induced transparency.