Completed Computing & AI Physics & Astronomy

Silicon Cloverleaf

In plain English

AI plain-English summary

A silicon chip the size of a fingernail will orchestrate the quantum states of individual electrons, forming the core of a new quantum computer called Silicon Cloverleaf. Today’s quantum computers are notoriously difficult to scale up. Adding more qubits—the quantum equivalent of a classical bit—usually means building a larger, more complex machine. Cloverleaf tackles this bottleneck head-on. Its quantum processing unit is designed as a two-dimensional tile that can be replicated and connected with minimal extra space. The chip is fabricated in standard semiconductor foundries, the same factories that produce conventional computer chips, which means the system can grow in complexity without requiring exotic manufacturing. If the project succeeds, it will demonstrate a practical path from today’s small, error-prone quantum processors to larger, more capable machines. That matters because useful quantum computers—ones that could crack previously unsolvable problems in drug design, materials science, or logistics—will need thousands or millions of qubits, not dozens. Cloverleaf’s architecture is a concrete step toward that scale, using established industrial processes rather than laboratory one-offs. The result could be a quantum computer that is not just powerful, but also manufacturable.

View original technical description
Silicon Cloverleaf introduces a quantum computing system based on Quantum Motion's spin qubit technology. At its heart lies a two dimensionally scalable quantum processing unit (QPU), integrated with control systems and a user interface. What sets Cloverleaf apart is its scalability. Its architecture is designed to demonstrate a scalable tile and allow for easy expansion. Advanced semiconductor fabrication techniques enable the system to grow in complexity with minimal spatial increase. Cloverleaf offers a blend of proprietary routines for system optimization and automatic calibration and the flexibility for custom user scripts to demonstrate algorithms. The chip is designed by Quantum Motion and fabricated in leading foundries, ensuring consistent delivery of high-quality chips and a straightforward upgrade path to larger systems as the technology progresses.

View the original record at the funder ↗

Related Research

Grants with similar aims, by meaning.

Quantum Large Scale Integretion in Silicon
Quantum Pixel (QuPix)
SiQEC - Silicon Quantum Error Correction
Quantum technology with a spin-photon architecture for thousand-qubit chipsets at telecom wavelengths
Multicore NISQ Processors on Silicon Chips

Original classification

Small Business Research Initiative

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.