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IBM Reports Largest Entangled State to Date, Achieving 0.56 Fidelity on 120 Superconducting Qubits

Mohamed Abdel-Kareem
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⚡ Quantum Brief
IBM researchers created the largest entangled quantum state to date—a 120-qubit GHZ state—using superconducting qubits, achieving 0.56 fidelity, surpassing the 0.5 threshold needed to confirm genuine multipartite entanglement. The breakthrough relied on a fixed-frequency, tunable-coupler processor and a novel compiler framework with adaptive compilation, optimizing qubit placement to minimize noise in less stable chip regions. Low-overhead error detection via parity checks and dynamical measurements acted as real-time error mitigation, while temporary uncomputation reduced idle noise by briefly disentangling early qubits for stabilization. Fidelity was verified using Direct Fidelity Estimation and parity oscillation tests, as classical simulation of the full state remains impossible, underscoring the experiment’s quantum advantage. These large GHZ states serve as resource states for quantum protocols like Secret Key Distribution, marking progress toward fault-tolerant quantum computing.
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IBM Quantum researchers have successfully prepared the largest Greenberger–Horne–Zeilinger (GHZ) state reported to date, consisting of 120 superconducting qubits. The experiment, detailed in a paper titled “Big cats: entanglement in 120 qubits and beyond,” achieved a measured fidelity of 0.56(3), surpassing the 0.5 threshold required to confirm genuine multipartite entanglement across all qubits. The resource state was prepared on a fixed-frequency, tunable-coupler superconducting processor. The achievement was enabled by several specialized techniques within a novel compiler framework: Adaptive Compilation: The circuit was compiled adaptively to utilize the least noisy regions of the chip, maximizing error detection against non-uniform noise. Low-Overhead Error Detection: The protocol incorporated low-overhead parity checks and dynamical measurements, which acted as a single-shot form of error mitigation. Temporary Uncomputation: The researchers employed a process that temporarily disentangled the earliest qubits to allow them to relax to a stable ground state before re-entanglement, reducing noise accumulated in long idle regions. The ability to faithfully entangle a large number of particles is a key benchmark for the quality of quantum hardware and control, demonstrating progress toward fault-tolerant quantum computing. IBM certified the fidelity using two statistical methods—Direct Fidelity Estimation (DFE) and parity oscillation tests—which are necessary because the full state cannot be classically simulated. Beyond benchmarking, these large GHZ states are resource states that can be used to perform various quantum protocols and algorithms, including Quantum Secret Key Distribution (SKQD). Read the full details of the research in the arXiv paper here. November 3, 2025

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Source: Quantum Computing Report

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