Tag: Superconducting Quantum Processors

Quantum (3)

Quantum Elements and Planckian Partner to Develop Architecture-Specific Digital Twins for Superconducting Quantum Processors

Quantum Elements and Planckian have announced a development agreement to create architecture-specific noise models and digital twin capabilities for Planckian’s novel superconducting quantum processors. The work will characterize coherence, leakage, and operation-level errors to support evaluation of quantum error correction schemes on classical hardware. This builds on prior demonstrations of large-scale, hardware-faithful simulations, including a 97-qubit surface-code experiment. The collaboration aims to provide a realistic noise environment for designing fault-tolerant strategies ahead of physical scaling. The partnership combines Quantum Elements’ AI-powered digital twin platform with Planckian’s shared-control superconducting architecture.

Read More »

China’s Origin Quantum Launches Origin Wukong-180

Origin Quantum has introduced its fourth-generation superconducting quantum computer, the Origin Wukong-180, featuring 180 computational qubits. Built on a complete domestic stack, the system offers improved gate fidelities and coherence times. It is immediately available to global users via cloud platform and supports early applications in AI model optimization, biochemistry, finance, chemistry, and smart grid analysis.

Read More »

China Claims 105-Qubit “Zuchongzhi 3.0” Quantum Computer

Chinese scientists have introduced “Zuchongzhi 3.0,” a 105-qubit superconducting quantum computer, marking a major step in quantum research. The system vastly outperforms classical supercomputers and strengthens China’s position in the global quantum race. Researchers see potential in materials science, cryptography, and scalable quantum technologies.

Read More »

Get The Qubit Report delivered straight to your inbox.

Sign up to receive our newsletter and other reports.

We keep your data private and share your data only with third parties that make this service possible. Read our privacy policy for more info.