| Literature DB >> 33589811 |
Baptiste Jadot1, Pierre-André Mortemousque2, Emmanuel Chanrion2, Vivien Thiney2, Arne Ludwig3, Andreas D Wieck3, Matias Urdampilleta2, Christopher Bäuerle2, Tristan Meunier4.
Abstract
In the quest for large-scale quantum computing, networked quantum computers offer a natural path towards scalability. While recent experiments have demonstrated nearest neighbour entanglement for electron spin qubits in semiconductors, on-chip long-distance entanglement could bring more versatility to connect quantum core units. Here, we employ the moving trapping potential of a surface acoustic wave to realize the controlled and coherent transfer of a pair of entangled electron spins between two distant quantum dots. The subsequent electron displacement induces coherent spin rotations, which drives spin quantum interferences. We observe high-contrast interference as a signature of the preservation of the entanglement all along the displacement procedure, which includes a separation of the two spins by a distance of 6 μm. This work opens the route towards fast on-chip deterministic interconnection of remote quantum bits in semiconductor quantum circuits.Year: 2021 PMID: 33589811 DOI: 10.1038/s41565-021-00846-y
Source DB: PubMed Journal: Nat Nanotechnol ISSN: 1748-3387 Impact factor: 39.213