Quantum Brain
← Back to papers

A cryogenic on-chip microwave pulse generator for large-scale superconducting quantum computing

Zenghui Bao, Yan Li, Zhiling Wang, Jiahui Wang, Jize Yang, H. Xiong, Yipu Song, Yukai Wu, Hongyi Zhang, Luming Duan·July 16, 2024·DOI: 10.1038/s41467-024-50333-w
MedicinePhysics

AI Breakdown

Get a structured breakdown of this paper — what it's about, the core idea, and key takeaways for the field.

Abstract

For superconducting quantum processors, microwave signals are delivered to each qubit from room-temperature electronics to the cryogenic environment through coaxial cables. Limited by the heat load of cabling and the massive cost of electronics, such an architecture is not viable for millions of qubits required for fault-tolerant quantum computing. Monolithic integration of the control electronics and the qubits provides a promising solution, which, however, requires a coherent cryogenic microwave pulse generator that is compatible with superconducting quantum circuits. Here, we report such a signal source driven by digital-like signals, generating pulsed microwave emission with well-controlled phase, intensity, and frequency directly at millikelvin temperatures. We showcase high-fidelity readout of superconducting qubits with the microwave pulse generator. The device demonstrated here has a small footprint, negligible heat load, great flexibility to operate, and is fully compatible with today’s superconducting quantum circuits, thus providing an enabling technology for large-scale superconducting quantum computers. Integrating a control interface with a quantum processor as the number of qubits scales is a significant challenge. Here the authors report a cryogenic on-chip microwave pulse generator for superconducting qubits with high degree of controllability, negligible heat load, and a small footprint.

Related Research

Quantum Intelligence

Ask about quantum research, companies, or market developments.