
Remote entanglement between stable quantum memories – mediated by optical photons – will likely be a critical component in fully scalable quantum computers, and there has been great progress over the last decade on improving the rate and fidelity of such quantum interconnects. We have recently extended this idea to three trapped atomic ions in separate vacuum chambers, heralded in a GHZ-entangled state with fidelity of 86% and rate of 0.1/sec. We measure a clear violation of Mermin’s inequality, while closing the detection loophole for the first time in a fully-distributed multipartite entangled state.
- “Tripartite entanglement of remote atomic qubits,” I. Goetting, et al., arXiv:2606.17173 (2026).
- See also concurrent results with 3 neutral atom + cavity nodes from the Max Planck Institute for Quantum Optics, “Efficient entanglement of three remote single-atom quantum-network nodes,” M. Seubert, et al., arXiv:2606.32006 (2006).


Typical qubit gate operations are binary, involving operations with up to just two qubits. While this can be universal, it is more efficient for almost all quantum circuits to directly entangle qubits with N-body interactions. With trapped ions, gates are typically realized by applying optical state-dependent displacements to the ions. By instead using state-dependent squeezing forces, the workhorse quantum gate between pairs of trapped ions is extended to an N-qubit gate. This is an important shortcut for most quantum circuits such as quantum error-correction encoding and quantum optimization circuits, while also providing direct N-body interactions for quantum simulations of many-body quantum systems.


![Encoding and stabilizer readout schematic for the Bacon-Shor [[9,3,1]] error correction process.](https://iontrap.duke.edu/files/2021/10/FTQEC-1024x331.jpg)


Profs. Christopher Monroe and Michael Raymer spearheaded the U.S. National Quantum Initiative (NQI