Violating Bell's inequality in gate-defined quantum dots

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Steinacker, Paul, Tanttu, Tuomo, Lim, Wee Han, Stuyck, Nard Dumoulin, Feng, MengKe, Serrano, Santiago, Vahapoglu, Ensar, Su, Rocky Y., Huang, Jonathan Y., Jones, Cameron, Itoh, Kohei M., Hudson, Fay E., Escott, Christopher C., Morello, Andrea, Saraiva, Andre, Yang, Chih Hwan, Dzurak, Andrew S., Laucht, Arne
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866911227132772352
author Steinacker, Paul
Tanttu, Tuomo
Lim, Wee Han
Stuyck, Nard Dumoulin
Feng, MengKe
Serrano, Santiago
Vahapoglu, Ensar
Su, Rocky Y.
Huang, Jonathan Y.
Jones, Cameron
Itoh, Kohei M.
Hudson, Fay E.
Escott, Christopher C.
Morello, Andrea
Saraiva, Andre
Yang, Chih Hwan
Dzurak, Andrew S.
Laucht, Arne
author_facet Steinacker, Paul
Tanttu, Tuomo
Lim, Wee Han
Stuyck, Nard Dumoulin
Feng, MengKe
Serrano, Santiago
Vahapoglu, Ensar
Su, Rocky Y.
Huang, Jonathan Y.
Jones, Cameron
Itoh, Kohei M.
Hudson, Fay E.
Escott, Christopher C.
Morello, Andrea
Saraiva, Andre
Yang, Chih Hwan
Dzurak, Andrew S.
Laucht, Arne
contents Superior computational power promised by quantum computers utilises the fundamental quantum mechanical principle of entanglement. However, achieving entanglement and verifying that the generated state does not follow the principle of local causality has proven difficult for spin qubits in gate-defined quantum dots, as it requires simultaneously high concurrence values and readout fidelities to break the classical bound imposed by Bell's inequality. Here we employ heralded initialization and calibration via gate set tomography (GST), to reduce all relevant errors and push the fidelities of the full 2-qubit gate set above 99 %, including state preparation and measurement (SPAM). We demonstrate a 97.17 % Bell state fidelity without correcting for readout errors and violate Bell's inequality with a Bell signal of S = 2.731 close to the theoretical maximum of $2\sqrt{2}$. Our measurements exceed the classical limit even at elevated temperatures of 1.1 K or entanglement lifetimes of 100 $μs$.
format Preprint
id arxiv_https___arxiv_org_abs_2407_15778
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Violating Bell's inequality in gate-defined quantum dots
Steinacker, Paul
Tanttu, Tuomo
Lim, Wee Han
Stuyck, Nard Dumoulin
Feng, MengKe
Serrano, Santiago
Vahapoglu, Ensar
Su, Rocky Y.
Huang, Jonathan Y.
Jones, Cameron
Itoh, Kohei M.
Hudson, Fay E.
Escott, Christopher C.
Morello, Andrea
Saraiva, Andre
Yang, Chih Hwan
Dzurak, Andrew S.
Laucht, Arne
Mesoscale and Nanoscale Physics
Quantum Physics
81P68, 81-05
Superior computational power promised by quantum computers utilises the fundamental quantum mechanical principle of entanglement. However, achieving entanglement and verifying that the generated state does not follow the principle of local causality has proven difficult for spin qubits in gate-defined quantum dots, as it requires simultaneously high concurrence values and readout fidelities to break the classical bound imposed by Bell's inequality. Here we employ heralded initialization and calibration via gate set tomography (GST), to reduce all relevant errors and push the fidelities of the full 2-qubit gate set above 99 %, including state preparation and measurement (SPAM). We demonstrate a 97.17 % Bell state fidelity without correcting for readout errors and violate Bell's inequality with a Bell signal of S = 2.731 close to the theoretical maximum of $2\sqrt{2}$. Our measurements exceed the classical limit even at elevated temperatures of 1.1 K or entanglement lifetimes of 100 $μs$.
title Violating Bell's inequality in gate-defined quantum dots
topic Mesoscale and Nanoscale Physics
Quantum Physics
81P68, 81-05
url https://arxiv.org/abs/2407.15778