论文标题

多模光子阻滞

Multimode photon blockade

论文作者

Chakram, Srivatsan, He, Kevin, Dixit, Akash V., Oriani, Andrew E., Naik, Ravi K., Leung, Nelson, Kwon, Hyeokshin, Ma, Wen-Long, Jiang, Liang, Schuster, David I.

论文摘要

相互作用对于创建相关量子多体状态至关重要。尽管两体相互作用是最自然现象的基础,但三体和四体相互作用对于核的物理学[1],超速量子气体中的异国情调的几个体态[2],分数量子霍尔效应[3],量子误差校正[4]和全息[5,6]。最近,许多人造量子系统已成为多体物理学的模拟器,具有设计强相互作用的能力。但是,这些系统中的相互作用在很大程度上仅限于两体范式,并且需要通过将两体力结合来构建多体相互作用。在这里,我们证明了存储在任意数量的多模腔的电磁模式中的微波光子之间的纯净N体相互作用。该系统的着装使得直到目标多种不同的模式达到目标总光子数量之前,它们总共没有相互作用,此时它们相互作用。微波腔具有9模式,具有$ \ sim 2 $ ms的光子寿命与超导式传输电路耦合,形成了一个多模电路QED系统,其单个光子合作社为$ \ sim10^9 $。我们通过在Transmon电路上使用空腔光子数量解析驱动器来封锁任何多光子状态,其中所选的总光子数分布在目标模式上。我们利用状态制备的相互作用,通过仅作用于空腔模式的量子最佳对照脉冲来制备增加光子数量的FOCK状态。我们通过使用统一的腔驱动器和多模光子阻滞的纠缠来证明多模相互作用,并使用用于多模wigner层析成像的新协议来表征所得的两模式W状态。

Interactions are essential for the creation of correlated quantum many-body states. While two-body interactions underlie most natural phenomena, three- and four-body interactions are important for the physics of nuclei [1], exotic few-body states in ultracold quantum gases [2], the fractional quantum Hall effect [3], quantum error correction [4], and holography [5, 6]. Recently, a number of artificial quantum systems have emerged as simulators for many-body physics, featuring the ability to engineer strong interactions. However, the interactions in these systems have largely been limited to the two-body paradigm, and require building up multi-body interactions by combining two-body forces. Here, we demonstrate a pure N-body interaction between microwave photons stored in an arbitrary number of electromagnetic modes of a multimode cavity. The system is dressed such that there is collectively no interaction until a target total photon number is reached across multiple distinct modes, at which point they interact strongly. The microwave cavity features 9 modes with photon lifetimes of $\sim 2$ ms coupled to a superconducting transmon circuit, forming a multimode circuit QED system with single photon cooperativities of $\sim10^9$. We generate multimode interactions by using cavity photon number resolved drives on the transmon circuit to blockade any multiphoton state with a chosen total photon number distributed across the target modes. We harness the interaction for state preparation, preparing Fock states of increasing photon number via quantum optimal control pulses acting only on the cavity modes. We demonstrate multimode interactions by generating entanglement purely with uniform cavity drives and multimode photon blockade, and characterize the resulting two- and three-mode W states using a new protocol for multimode Wigner tomography.

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