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Updated: Apr 13, 2026

Scalable Quantum Integrated Circuits on Superconducting Two-Dimensional Electron Gas Platform
Published on: August 2, 2019
Demonstration of a quantum error detection code using a square lattice of four superconducting qubits
A D Córcoles1, Easwar Magesan1, Srikanth J Srinivasan1
1IBM T.J. Watson Research Center, Yorktown Heights, New York 10598, USA.
Researchers developed a quantum error detection protocol using superconducting qubits. This method can identify errors in entangled quantum bits, a crucial step for building reliable quantum computers.
Area of Science:
- Quantum Computing
- Quantum Error Correction
Background:
- Fault-tolerant quantum computing necessitates robust error detection and correction mechanisms.
- Quantum bits (qubits) are prone to a wider range of errors than classical bits.
- Advanced quantum error-correcting codes require multi-dimensional lattice structures.
Purpose of the Study:
- To present a novel quantum error detection protocol.
- To demonstrate error detection on a two-by-two planar lattice of superconducting qubits.
Main Methods:
- Implementation of a quantum error detection protocol on a 2x2 superconducting qubit lattice.
- Utilizing quantum non-demolition parity measurements on auxiliary qubits to detect errors.
- Encoding a two-qubit entangled state for error monitoring.
Main Results:
- Successfully detected arbitrary quantum errors on an encoded two-qubit entangled state.
- Demonstrated the efficacy of the protocol on a planar superconducting qubit architecture.
- Established a foundational element for scalable quantum error correction.
Conclusions:
- The presented protocol is a key building block for fault-tolerant quantum computing.
- This work paves the way for implementing larger quantum error correction architectures, like the surface code.
- Advances in quantum error detection are critical for realizing the potential of quantum computation.
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