IBM Quantum
Heron
Tunable-couplers
With 133 or 156 fixed-frequency programmable qubits and tunable couplers, the Heron family delivers high-performance quantum computing.
- 133 / 156Programmable qubits
- 3.7 E-3Quality (EPLG)
- 3.9 kHzThroughput (MCPS)





IBM delivers the most performant and reliable quantum hardware, backed by industry-leading production processes.
Quantum devices (<100q)
60
Since 2016
Quantum computers (>100q)
30+
Since 2022
Available qubits
2300+
Circuits ran
3.9T+
Availability (% uptime)
97%

IBM Quantum System Two is IBM's flagship quantum computing system and the cornerstone of quantum-centric supercomputing. IBM Quantum System Two runs at IBM sites in New York and at partner centers in Kobe, Japan, and San Sebastián, Spain. More installations are underway, including one at the National Quantum Algorithm Center in Chicago, Illinois.
Quantum-centric supercomputing splits a problem between quantum and classical processors, with each contributing its best algorithmic capabilities to a combined workflow.
A blueprint for quantum-centric supercomputing
IBM Quantum Starling is IBM's fault-tolerant quantum computer, planned for 2029. Starling will connect multiple modules in an error-corrected architecture to run 100 million quantum gates on 200 logical qubits.
Learn more about IBM's path to fault toleranceIBM Quantum’s modular approach to housing and cooling superconducting quantum processors clears a path for interconnected, fault-tolerant systems.


IBM fabricates its qubits using state-of-the-art 300mm semiconductor chip fabrication. IBM put semi-automated tooling to work in new ways, cutting the time to build each new processor by at least half. This lets us research and explore multiple designs in parallel.

From multi-layer wiring to tunable couplers, IBM has fine-tuned signal delivery and packaging so qubit control scales with processor complexity. A new low-loss wiring layer in development will enable the distant qubit connections that IBM's qLDPC error-correcting code requires.

Running billions of gates requires multiple quantum chips working together. And that requires modular components that create a single cryogenic environment. From componentized fridge design to flex wiring, IBM continues to drive scalability and affordability. Cryogenic CMOS control electronics in development will reduce system complexity and improve reliability.

L-couplers are microwave cables that enable computation across chips, modules, and systems. These inter-module connections extend processing power in multi-QPU systems, and will do the same for fault-tolerant architectures.
