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  • Hubbard 1D
    • Part 1: 1D Hubbard model
    • Part 2: Snake layout and fSWAP
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    • Part 4: 120-qubit run
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    • Part 9: Digital vs cold-atom labs
    • Part 10: Official Monoprop benchmark
  • Hubbard 2D
    • Part 1: 1D to 2D
    • Part 2: Cuprates
    • Part 3: 3×3
    • Part 4: Time
    • Part 5: 4×4
    • Part 6: 6×6 Fez
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    • Part 1: Hadron on a quantum processor
    • Part 2: Quarks and confinement
    • Part 3: SU(2) and LSH
    • Part 4: Hamiltonian and circuit
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    • Part 7: Quantum advantage
  • Black Hole OLE
    • Part 1: What we ran
    • Part 2: How OLE works
    • Part 3: Fire Opal and Kingston
    • Part 4: The tensor-network challenge
    • Part 5: Hawking and scrambling
    • Part 6: What the result proves
    • Part 7: Local toy model
    • Part 8: QGSS26 compatibility
  • Random Graph
    • Start here
    • Part 1: Theory
    • Part 2: Circuit
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  • QOS QML
    • Tutorial: UMI counts to a four-qubit circuit
    • Part 1: The QML task
    • Part 2: QOS theory
    • Part 3: Gene expression to 40 qubits
    • Part 4: JAX to hardware
    • Part 5: Readout and classifier
    • Part 6: 40-qubit result
    • Part 7: Route to quantum advantage
    • Part 8: 60-qubit result
  • Floquet-Ising
    • Part 1: Floquet physics
    • Part 2: Ising cycle
    • Part 3: Two-qubit toy model
    • Part 4: Oscillation and entanglement
    • Part 5: Noise and error mitigation
    • Part 6: Toward 51 qubits
  • Work
    • Quantum Gold
      • Part 1: Why gold is a relativistic quantum problem
      • Part 2: Why the 2025 gold VQE study stalled
      • Part 3: From QE and spin–orbit coupling to Qiskit
      • Part 4: Twelve gold spinor modes on four qubits
      • Part 5: The 24-qubit route: an active window for transport
      • Part 6: 24 qubits on IBM and with Fire Opal
      • Part 7: The road to quantum advantage for gold
      • Part 8: 24 gold spinor modes on IBM with ZNE-PEA
      • Part 9: Forced gold colour on 56 qubits
    • HaPPY Gravity
      • Part 1: Gravity as a phase gate
      • Part 2: Bosons and convergence
      • Part 3: The dynamic HaPPY benchmark
      • Part 4: The N=145 classical audit
      • Part 5: MPS and Majorana baselines
      • Part 6: PEA/ZNE and the decisive test
    • Fibonacci Anyons
      • Part 1: Fusion and braiding
      • Part 2: The 3/5/9-qubit ladder
      • Part 3: Why nine qubits were too deep
      • Part 4: Structure-aware simplification
      • Part 5: IBM hardware diagnostic
      • Part 6: Results and open questions
  • Advantage List
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Measured charge-density outcome by site for the 120-qubit Fermi-Hubbard hardware run

Quantum computing news — August 9, 2026

Posted on August 9, 2026August 13, 2026 by

Latest quantum computing news

Daily selection from Google News for August 9, 2026. Headlines link to the original publication.

Charge-density measurement from a 120-qubit Fermi-Hubbard run
Quantum Computing Stocks: D-Wave Earnings, Revenue Miss – Investor's Business DailyInvestor's Business Daily · Thu, 06 Aug 2026 11:44:00 GMT
Illustration of a spreading quantum pulse
3 Quantum Computing Stocks With the Most Analyst Upside in August – 24/7 Wall St.24/7 Wall St. · Fri, 07 Aug 2026 19:22:25 GMT
Quantum signal across several system sizes
What Sent IonQ Shares Surging and Whether the Momentum Can Last – The Motley FoolThe Motley Fool · Fri, 07 Aug 2026 18:30:00 GMT
Quantum phase-estimation circuit
Watch PsiQuantum CEO on Quantum Computing Progress, Chip Space – Bloomberg.comBloomberg.com · Wed, 05 Aug 2026 21:46:16 GMT
Visualization of a quantum spin state
New 'shape-shifting' architecture brings versatility to photonic quantum computing – Phys.orgPhys.org · Fri, 07 Aug 2026 21:00:01 GMT
Diagnostic panels from a local quantum scrambling model
Xanadu Accelerates Chip Production as Investors Await Next Catalyst in Race to Scalable Quantum Computing – Quarterly Update Report – Yahoo FinanceYahoo Finance · Sat, 08 Aug 2026 16:41:43 GMT
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