AskVantage

Computing

Google Willow quantum chip smashes classical supercomputer by 10 Septillion years in test

Googles newest Quantum computing chip just beat a classical computer by 10 Septillion years in a quantum optimised benchmark test.

Key takeaways

  • Through a newly unveiled quantum chip called Willow, Google engineers have passed a significant milestone in error handling.
  • Unlike the bits of classic computing, which can store a 1 or a 0, these qubits can store a 1, a 0, or a superposition of both.
  • While today's systems are robust enough to ensure 99.9 percent reliability, practical systems need the error rate to be closer to one in a trillion.
Cite or link to this article

Griffin, M. (2024) 'Google Willow quantum chip smashes classical supercomputer by 10 Septillion years in test', 311 Institute, 15 December. Available at: https://www.311institute.com/google-willow-quantum-chip-smashes-classical-supercomputer-by-10-septillion-years-in-test/ (Accessed: 1 October 2026).

In spite of the advances made towards making quantum computers practical, and them breaking the Quantum Supremacy barrier a while ago - allegedly - qubit-based systems remain unstable and highly vulnerable to errors – something that Microsoft is trying to fix and something that Google may have taken a major step towards fixing.

Through a newly unveiled quantum chip called Willow, Google engineers have passed a significant milestone in error handling. Specifically, they've been able to keep a single logical qubit stable enough so errors occur maybe once every hour, which is a vast improvement on previous setups that failed every few seconds.

Qubits are the basic building blocks of quantum information. Unlike the bits of classic computing, which can store a 1 or a 0, these qubits can store a 1, a 0, or a superposition of both. The combination is a powerful tool in designing algorithms that can crunch problems that would take a classical computer far too long to solve, if they could manage it at all.

Get more information on the breakthrough and the test

Unfortunately qubits are delicate things, their superpositions prone to entangling with the environment and losing their mathematical properties. While today's systems are robust enough to ensure 99.9 percent reliability, practical systems need the error rate to be closer to one in a trillion.

To counter errors in these fragile qubits, researchers can spread a single logical qubits across a number of particles in superposition. However, this scaling only works if the extra physical qubits are correcting errors noticeably faster than they're producing them.

"Willow is the first processor where error-corrected qubits get exponentially better as they get bigger," write Michael Newman and Kevin Satzinger, research scientists from the Google Quantum AI team.

"Each time we increase our encoded qubits from a 3×3 to a 5×5 to a 7×7 lattice of physical qubits, the encoded error rate is suppressed by a factor of two."

Willow has 105 physical qubits, and a combination of its architecture and the error-correcting algorithms it uses have led to its success in terms of stability – where more qubits mean fewer errors.

This has been a problem since quantum error correction techniques were first introduced in the mid-1990s. While there's still a long road ahead to fully realized quantum computing, large-scale quantum operations may at least be feasible following this approach.

"This demonstrates the exponential error suppression promised by quantum error correction, a nearly 30-year-old goal for quantum computing and the key element to unlocking large-scale quantum applications," write Newman and Satzinger.

Stability isn't the only benefit of Willow: Google says it's able to complete a specific quantum task in five minutes that would take one of our fastest supercomputers 10 septillion years  - it's a task created specifically for quantum computers, but it still shows what's possible.

Errors are always going to exist in quantum systems, but what researchers are aiming to do is make them infrequent enough for quantum processing to be practical. That will require better hardware, more qubits, and upgraded algorithms.

"Quantum error correction looks like it's working now, but there's a big gap between the one-in-a-thousand error rates of today and the one-in-a-trillion error rates needed tomorrow," write Newman and Satzinger.

An unedited preview version of the research has been published in Nature.

FAQ

Why does this matter?

Googles newest Quantum computing chip just beat a classical computer by 10 Septillion years in a quantum optimised benchmark test.

Matthew Griffin

About the author

Matthew Griffin Founder, 311 Institute

Matthew Griffin is a multi-award winning Futurist and expert in Disruption and Innovation, Geopolitics, Leadership, and Technology, who NASA have described as a "walking encyclopaedia of the future" and a "futurist Polymath."

Read full bio

Matthew Griffin is a multi-award winning Futurist and expert in Disruption and Innovation, Geopolitics, Leadership, and Technology, who NASA have described as a "walking encyclopaedia of the future" and a "futurist Polymath." 15-time best selling author of the "Codex of the Future" series, Matthew is the Founder and Futurist in Chief of the 311 Institute, a global Futures and Deep Futures advisory firm working with royal households, world leaders, G7, G20, and G77 governments, NGOs, and multi-national mid and mega cap firms to help them explore, shape, and lead the next 50 years of business and society.

An award-winning YouTube creator with over a million followers, with an unrivalled global reach and impact, Matthew is a highly sought-after international keynote speaker, lecturer, and mentor who collaborates with global leaders through the United Nations Alliance of Civilizations (UNAOC) and United Nations General Assembly (UNGA) to shape pivotal initiatives such as the UN’s AI for Humanity program, the United Nations Conference of the Parties (UN COP), and the World Economic Forum in Davos.

As the former Global Head of Cloud, National Security, and Enterprise Sales for companies including Atos, Dell-EMC, and IBM, Matthew has a proven track record of building multi-billion dollar business units and turning failing divisions into market leaders. His ability to identify, analyse, and communicate the implications of hundreds of emerging technologies and trends is unparalleled, and his insights are trusted by many of the world’s most respected organisations, including ABB, Accenture, Adidas, AON, ARM, BCG, Centrica, Citi, Coca-Cola, Dentons, Deloitte, Dow Jones, EY, Google, KPMG, Lego, Legal & General, LinkedIn, Microsoft, PepsiCo, Qualcomm, RWE, Samsung, Siemens AG and Siemens Energy, T-Mobile, UBS, VISA, Walmart, Workday, Worldpay and many others.

Regularly featured in the global media including the AP, BBC, Bloomberg, CNBC, Discovery, Forbes, Khaleej Times, Telegraph, TIME, ViacomCBS, WIRED, and the WSJ, Matthews mission is to help organisations create a fair and sustainable future whose benefits are shared by everyone irrespective of their ability, background, or circumstances.

What future do you need to see?

Choose one to get started on computing and the future of your organisation.

Where should Matthew reply?

Takes 30 seconds. No obligation. Matthew replies quickly. Privacy

Tag Cloud

Starburst opens that technology on the interactive 311 Starburst.

Sources and further reading

  1. Making quantum error correction work research.google
  2. has 105 physical qubits blog.google
  3. quantum error correction en.wikipedia.org
  4. S41586 024 08449 y nature.com

Source: first published by the 311 Institute on 15 December 2024. Cite as: Griffin, M. (2024). Google Willow quantum chip smashes classical supercomputer by 10 Septillion years in test. 311 Institute. https://www.311institute.com/google-willow-quantum-chip-smashes-classical-supercomputer-by-10-septillion-years-in-test/

You are welcome to quote this article with credit and a link to the original.

Book a Keynote