A trapped-ion quantum processor with at least 50 qubits and thousands of low-error logic gates is being built inside a UK lab. This matters because even the most powerful classical supercomputers cannot simulate what such a machine can do. For 20 years, quantum computers have remained too small and error-prone to outperform classical machines on any real-world problem. This project aims to break that barrier by exploiting trapped-ion qubits, which already offer the high-fidelity connections needed for useful computation. If successful, the processor will demonstrate a clear "quantum advantage" — solving a practical problem that no classical computer can. That could eventually transform fields like quantum chemistry, where simulating molecular interactions is currently impossible, or condensed matter physics, where new materials and superconductors remain beyond theoretical reach. The hardware will also serve as a testbed for error-mitigation techniques and hybrid quantum-classical algorithms, which are essential stepping stones toward larger machines. This is primarily a fundamental engineering and physics project. Like the early classical computers that led to today’s digital world, the largest payoffs may come from unexpected directions once researchers can prototype new ideas on real quantum hardware.
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This project is aimed at developing the world's highest-performance quantum processor - a new form of computer that manipulates information in a vastly different and more powerful way than a conventional computer. Sufficiently large quantum computers can solve problems intractable on any type of non-quantum ("classical") hardware. For example, a quantum computer would be able to simulate the physics or chemistry of complex problems impossible to model on a classical super-computer. This would profoundly impact scientific research, and allow access to regimes that are currently beyond experimental or theoretical reach; for example in quantum chemistry, or condensed matter physics. Despite 20 years of experimental work on quantum computing, a quantum processor with such computational power has remained beyond the reach of experiments. Recent progress in trapped-ion techniques means that such a machine is now attainable in the time-frame of this project. In recent years a variety of technologies has been used to show that the building blocks of a quantum computer can work well enough to perform useful real-world computations. The challenge now, for all technologies, is to develop systems with a large number of qubits (quantum bits, the basic unit of information in a quantum computer) possessing the qubit-to-qubit connectivity which is essential for quantum computing, while minimizing operation errors. The eventual aim for this field is to build processors containing hundreds of thousands of effectively perfect qubits all connected by high precision quantum logic gates. Such a full scale quantum computer will change the 21st century in the same way as the classical computer changed the 20th century. However, building a processor this complex remains a formidable engineering challenge which will require significant resources and last for decades. The focus of this project is instead to try and aim for a realistic near-term goal. Using trapped atomic ions as qubits, and taking advantage of the high fidelity and high connectivity gates already proven with these qubits, we aim to make a processor with at least 50 qubits, with gate errors low enough to perform circuits of thousands of gates. Such an intermediate scale quantum processor is beyond the ability of even our most powerful classical supercomputers to mimic. With this processor, we aim to demonstrate the potential quantum computers have to solve real-world problems with a "quantum advantage". In addition, we aim to develop and to test noise-resilient methods to extract maximum performance from intermediate-scale processors, such as error mitigation protocols and hybrid quantum-classical algorithms. However, as the history of classical computing has shown us, with the ability to develop and to prototype new techniques on real quantum hardware the largest rewards may well come from unexpected directions. This project will deliver that hardware.
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