Synopsis

Cavities Play Catch with Photons

Physics 7, s110
A single photon with an optimally shaped waveform can be loaded into a cavity with near-unity efficiency.
Luwei Zhao/The Hong Kong University of Science and Technology

Future quantum networks might consist of flying quantum bits made of single photons, captured by nodes that perform computations and send messages. But how easy is it to catch and hold a single photon, for instance, in a small cavity? Researchers in the group of Shengwang Du at the Hong Kong University of Science and Technology have demonstrated that, by shaping its wave function, an individual photon can be loaded into a cavity with near-unity efficiency.

When a photon is injected into a cavity, it can be reflected, transmitted, or captured by the cavity. In previous experiments, reflection and transmission limited the photon loading efficiency to 20%. The new idea is based on exploiting quantum interference phenomena in a cavity between two mirrors—a perfectly reflecting one and an input/output mirror. Using an electro-optical modulator, the researchers prepare a photon wave function that, after each round trip in the cavity, interferes destructively with the reflected wave packet. This eliminates most reflections from the cavity while the photon is injected into the cavity.

To monitor the cavity photon without perturbing it, the authors apply a “heralded” scheme: a laser-pumped rubidium-atom cloud emits entangled photon pairs, which are then split. The detection of one photon heralds the presence of the one being sent into the cavity. Using an optimally prepared waveform, the authors demonstrate a record loading efficiency of 87%. The scheme could be used to build nodes of a network based on cavity quantum electrodynamics, in which operations are carried out via the interaction of a single photon with a single atom.

This research is published in Physical Review Letters.

–Matteo Rini


Subject Areas

OpticsQuantum Physics

Related Articles

Quantum “Torch” Begins Its Relay
Quantum Physics

Quantum “Torch” Begins Its Relay

A quantum light source is touring European labs in preparation for the 2025 International Year of Quantum Science and Technology. Read More »

Quantum Machine Learning Goes Photonic
Quantum Physics

Quantum Machine Learning Goes Photonic

Measuring a photon’s angular momentum after it passes through optical devices teaches an algorithm to reconstruct the properties of the photon’s initial quantum state. Read More »

Stiffening a Spring Made of Light
Optics

Stiffening a Spring Made of Light

Adding a nonlinear crystal to an optical spring can change the spring’s stiffness, a finding that could allow the use of such devices as gravitational-wave detectors. Read More »

More Articles