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SWAP Gate for Spin Qubits Based on Silicon Devices Integrated with a Micromagnet

  • Ming Ni
  • , Rong Long Ma
  • , Zhen Zhen Kong
  • , Xiao Xue
  • , Sheng Kai Zhu
  • , Chu Wang
  • , Ao Ran Li
  • , Ning Chu
  • , Wei Zhu Liao
  • , Gang Cao
  • , Gui Lei Wang
  • , Xuedong Hu
  • , Hong Wen Jiang
  • , Hai Ou Li
  • , Guo Ping Guo
  • University of Science and Technology of China
  • CAS - Institute of Microelectronics
  • Delft University of Technology
  • Beijing Superstring Academy of Memory Technology
  • University of California at Los Angeles
  • Origin Quantum Computing Company Limited

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

In our toolbox of quantum gates for spin qubits, the SWAP-family gates based on Heisenberg exchange coupling are quite versatile: the SWAP gate can help solve the connectivity problem by realizing both short- and long-range spin state transfer, while the (Formula presented) gate is a basic two-qubit entangling gate. Here we demonstrate a SWAP gate in a double quantum dot in isotopically enriched silicon in the presence of a micromagnet. We achieve a two-orders-of-magnitude adjustable ratio between the exchange coupling J and the Zeeman energy difference ΔEz, overcoming a major obstacle for a high-fidelity SWAP gate. We also calibrate the single-qubit local phases, evaluate the logical-basis fidelity of the SWAP gate, and further analyze the dominant error sources. These results pave the way for high-fidelity SWAP gates and processes based on them, such as quantum communication on chip and quantum simulation.

Original languageEnglish
Pages (from-to)3766-3772
Number of pages7
JournalNano Letters
Volume25
Issue number10
DOIs
StatePublished - Mar 12 2025

Keywords

  • quantum dot
  • Si-MOS
  • spin qubits
  • SWAP gate
  • two-qubit gate

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