Login / Signup

Deterministic Loading of Microwaves onto an Artificial Atom Using a Time-Reversed Waveform.

Wei-Ju LinYong LuPing Yi WenYu-Ting ChengChing-Ping LeeKuan Ting LinKuan Hsun ChiangMing Che HsiehChing-Yeh ChenChin-Hsun ChienJia Jhan LinJeng-Chung ChenYen Hsiang LinChih-Sung ChuuFranco NoriAnton Frisk KockumGuin Dar LinPer DelsingIo-Chun Hoi
Published in: Nano letters (2022)
Loading quantum information deterministically onto a quantum node is an important step toward a quantum network. Here, we demonstrate that coherent-state microwave photons with an optimal temporal waveform can be efficiently loaded onto a single superconducting artificial atom in a semi-infinite one-dimensional (1D) transmission-line waveguide. Using a weak coherent state (the number of photons ( N ) contained in the pulse ≪1) with an exponentially rising waveform, whose time constant matches the decoherence time of the artificial atom, we demonstrate a loading efficiency of 94.2% ± 0.7% from 1D semifree space to the artificial atom. The high loading efficiency is due to time-reversal symmetry: the overlap between the incoming wave and the time-reversed emitted wave is up to 97.1% ± 0.4%. Our results open up promising applications in realizing quantum networks based on waveguide quantum electrodynamics.
Keyphrases
  • molecular dynamics
  • energy transfer
  • blood pressure
  • drug delivery
  • healthcare
  • lymph node
  • monte carlo
  • wound healing
  • network analysis