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Russia builds 72-qubit quantum computer prototype with 94% two-qubit accuracy - Interesting Engineering

Google News – Quantum Computing
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⚡ Quantum Brief
Russian researchers from Rosatom and Lomonosov Moscow State University unveiled a 72-qubit quantum computer prototype in December 2025, marking their third system exceeding 70 qubits. The neutral rubidium-atom-based design achieves 94% two-qubit accuracy. The three-zone architecture separates computing, storage, and readout functions to minimize qubit errors. Only two zones are currently active, with the readout zone planned for future integration to enhance error correction. This milestone follows Russia’s 2023 16-qubit system, showcasing rapid progress in domestic quantum development. Officials emphasize technological sovereignty, noting no foreign collaboration was required for the prototype’s construction. The 94% two-qubit fidelity, while below U.S. benchmarks, enables practical experimentation. Researchers highlight its role in advancing reliable quantum computations and training the next generation of scientists. The project involves senior academics and students, with leaders calling it a strategic step toward surpassing classical computers by 2030. The focus remains on scaling qubit count while improving operational reliability.
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Quantum News · Media Library

Representative image of a futuristic quantum computer.Getty Images Researchers at the Russian state Atomic Energy Corporation Rosatom and Lomonosov Moscow State University have developed a prototype three-zone quantum computer with 72 qubits. This is the third time Russian researchers have unveiled a quantum computer prototype with over 70 qubits, local media reported. Quantum computing promises to exponentially increase our ability to perform complex calculations when compared to the fastest supercomputers of the day. Instead of relying on silicon-based binary bits, quantum computers use quantum bits, or qubits, that can store values of 0 and 1, as well as intermediate values. This ability to store multiple values enables qubits to perform multiple computations simultaneously. The higher the number of qubits, the greater the quantum computer’s computational ability. Researchers worldwide are working to build quantum computers with more qubits. However, increasing qubits also increases the errors that are incorporated during computations. So, the system’s accuracy is equally important. 94% accuracy The quantum computer prototype built by Rosatom and Lomonosov Moscow State University uses 72 qubits based on single neutral rubidium atoms. Using a two-qubit logical system, the quantum computer achieved 94 percent efficiency. While these numbers may not seem as high as those achieved by quantum computing companies in the US, they are significant because they pave the way for extensive practical experimentation with the system. Two-qubit operations are fundamental for building complex quantum systems and ensuring reliable computations. While the claims cannot be verified, Russian researchers have achieved this without collaborations, demonstrating technological sovereignty. Three-Zone design To improve functionality, the researchers used a three-zone design system for their quantum computer prototype. This architecture uses separate zones for computing, long-term data storage, and readout, with each area performing only a specialized function. Since qubits are sensitive to external influences, researchers have been looking for ways to maintain quantum states. A change in the quantum state results in a change in the value of the data stored, thereby introducing errors into complex calculations. The Russian design is aimed at performing complex calculations while correcting logical errors, a useful feature for building quantum computers with high-fidelity qubits. As Russia seeks to build quantum computers that surpass classical computers by the end of the decade, the three-zone architecture could be key. In this prototype, only two zones, namely computing and long-term storage, were used, while the third zone, the read-out zone, will be deployed in the next stage. “Reaching the 72-qubit mark on an atom-based platform confirms the systematic development of the domestic quantum project and our strong position in quantum research and the creation of quantum computer prototypes,” said Yekaterina Solntseva, Director of Quantum Technologies at Rosatom State Corporation. “It is especially important that the scientists have taken another step toward progressively improving the reliability of operations.” The development is also significant because, in 2023, Russia’s most powerful quantum computer had only 16 qubits. Within a couple of years, they have now built quantum computer prototypes with over 70 qubits for the third time. “Not only leading university specialists, but also young scientists, graduate students, and undergraduates are participating in these experiments and in the development of the computer, so this work is involving the younger generation in one of Russia’s most important scientific projects,” concluded Vladimir Belokurov, Dean of the Physics Department at Moscow State University in a statement ot TASS. Recommended ArticlesGet the latest in engineering, tech, space & science - delivered daily to your inbox.Sign up for freeBy subscribing, you agree to our Terms of Use and PoliciesYou may unsubscribe at any time.0COMMENTByAmeya PalejaAmeya is a science writer based in Hyderabad, India. A Molecular Biologist at heart, he traded the micropipette to write about science during the pandemic and does not want to go back. He likes to write about genetics, microbes, technology, and public policy.TRENDINGLATEST1World’s first unmanned dogfight: Turkey pits two robot fighter jets against each other2New US Navy destroyers to be powered by GE Aerospace's marine gas turbine engines3Video: China's humanoid robot dances and kicks box as Walker S2 hits 1,000 units4US Navy's F-35 jets to carry new fake-target decoys to defeat incoming missiles5China hides mobile nuclear missile launchers inside fake construction cranesMore from InnovationSee AllInnovationCarbon aerogel from seafood waste prevents heat leakage, keeps 97% capacityInnovationRethinking deicing as an electrostatic problemInnovationVideo: Victorian-era cast iron radiator repurposed as cooling system for gaming PCInnovationChina unveils world’s longest-range EREV sedan with 267-mile electric driveInnovationChina to treat drones as aircraft under new laws to improve safety, accountability`InnovationCarbon aerogel from seafood waste prevents heat leakage, keeps 97% capacityInnovationRethinking deicing as an electrostatic problemInnovationVideo: Victorian-era cast iron radiator repurposed as cooling system for gaming PCInnovationChina unveils world’s longest-range EREV sedan with 267-mile electric driveInnovationChina to treat drones as aircraft under new laws to improve safety, accountability`WEAR YOUR GENIUSShop NowJOBSSee AllGeneral ApplicationRemote • RemoteNot specifiedSee JobEditorRemote • RemoteNot specifiedSee JobGeneral ApplicationRemote • RemoteNot specifiedSee JobEditorRemote • RemoteNot specifiedSee JobMore from InnovationSee AllInnovationCarbon aerogel from seafood waste prevents heat leakage, keeps 97% capacityInnovationRethinking deicing as an electrostatic problemInnovationVideo: Victorian-era cast iron radiator repurposed as cooling system for gaming PCInnovationChina unveils world’s longest-range EREV sedan with 267-mile electric driveInnovationChina to treat drones as aircraft under new laws to improve safety, accountability`InnovationCarbon aerogel from seafood waste prevents heat leakage, keeps 97% capacityInnovationRethinking deicing as an electrostatic problemInnovationVideo: Victorian-era cast iron radiator repurposed as cooling system for gaming PCInnovationChina unveils world’s longest-range EREV sedan with 267-mile electric driveInnovationChina to treat drones as aircraft under new laws to improve safety, accountability`JOBSSee AllGeneral ApplicationRemote • RemoteNot specifiedSee JobEditorRemote • RemoteNot specifiedSee JobGeneral ApplicationRemote • RemoteNot specifiedSee JobEditorRemote • RemoteNot specifiedSee Job

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