The Quantum Socket: Three-Dimensional Wiring for Extensible Quantum Computing
arXiv:1606.00063 · doi:10.1103/PhysRevApplied.6.044010
Abstract
Quantum computing architectures are on the verge of scalability, a key requirement for the implementation of a universal quantum computer. The next stage in this quest is the realization of quantum error correction codes, which will mitigate the impact of faulty quantum information on a quantum computer. Architectures with ten or more quantum bits (qubits) have been realized using trapped ions and superconducting circuits. While these implementations are potentially scalable, true scalability will require systems engineering to combine quantum and classical hardware. One technology demanding imminent efforts is the realization of a suitable wiring method for the control and measurement of a large number of qubits. In this work, we introduce an interconnect solution for solid-state qubits: The quantum socket. The quantum socket fully exploits the third dimension to connect classical electronics to qubits with higher density and better performance than two-dimensional methods based on wire bonding. The quantum socket is based on spring-mounted micro wires the three-dimensional wires that push directly on a micro-fabricated chip, making electrical contact. A small wire cross section (~1 mmm), nearly non-magnetic components, and functionality at low temperatures make the quantum socket ideal to operate solid-state qubits. The wires have a coaxial geometry and operate over a frequency range from DC to 8 GHz, with a contact resistance of ~150 mohm, an impedance mismatch of ~10 ohm, and minimal crosstalk. As a proof of principle, we fabricated and used a quantum socket to measure superconducting resonators at a temperature of ~10 mK.
Main: 31 pages, 19 figs., 8 tables, 8 apps.; suppl.: 4 pages, 5 figs. (HiRes figs. and movies on request). Submitted
References in corpus (11)
- Quantum Computing
- Surface codes: Towards practical large-scale quantum computation
- Photonic quantum technologies
- Quantum algorithms: an overview
- Fault-tolerant quantum computation with high threshold in two dimensions
- Detecting arbitrary quantum errors via stabilizer measurements on a sublattice of the surface code
- Detecting bit-flip errors in a logical qubit using stabilizer measurements
- Two-resonator circuit QED: A superconducting quantum switch
- Microwave response of vortices in superconducting thin films of Re and Al
- Planck Spectroscopy and the Quantum Noise of Microwave Beam Splitters
- Wirebond crosstalk and cavity modes in large chip mounts for superconducting qubits
Cited by in corpus (37)
- A Quantum Engineer's Guide to Superconducting Qubits
- Quantum information processing with superconducting circuits: a review
- 3D integrated superconducting qubits
- Microwave Quantum Link between Superconducting Circuits Housed in Spatially Separated Cryogenic Systems
- Materials loss measurements using superconducting microwave resonators
- Scalable quantum circuit and control for a superconducting surface code
- Building Blocks of a Flip-Chip Integrated Superconducting Quantum Processor
- Combining Topological Hardware and Topological Software: Color Code Quantum Computing with Topological Superconductor Networks
- Double-sided coaxial circuit QED with out-of-plane wiring
- Microwave Package Design for Superconducting Quantum Processors
- Substrate surface engineering for high-quality silicon/aluminum superconducting resonators
- Topologically Protected Quantum Coherence in a Superatom
- A logical qubit in a linear array of semiconductor quantum dots
- Superconducting Quantum Simulator for Topological Order and the Toric Code
- Floquet quantum simulation with superconducting qubits
- High Coherence in a Tileable 3D Integrated Superconducting Circuit Architecture
- Merged-element transmon
- High Coherence Plane Breaking Packaging for Superconducting Qubits
- Josephson junction microwave modulators for qubit control
- Pseudo-2D superconducting quantum computing circuit for the surface code: the proposal and preliminary tests
- Development of an Undergraduate Quantum Engineering Degree
- Microwave calibration of qubit drive line components at millikelvin temperatures
- Extensible 3D architecture for superconducting quantum computing
- Wafer-scale uniformity of Dolan-bridge and bridgeless Manhattan-style Josephson junctions for superconducting quantum processors
- Tunable coupling of widely separated superconducting qubits: A possible application towards a modular quantum device
- High speed flux sampling for tunable superconducting qubits with an embedded cryogenic transducer
- One-dimensional quantum computing with a 'segmented chain' is feasible with today's gate fidelities
- Perspective: Reproducible Coherence Characterization of Superconducting Quantum Devices
- Thin film metrology and microwave loss characterization of indium and aluminum/indium superconducting planar resonators
- Thermocompression Bonding Technology for Multilayer Superconducting Quantum Circuits
- Fluctuation Spectroscopy of Two-Level Systems in Superconducting Resonators
- Hamiltonian quantum computing with superconducting qubits
- Mitigating coherent leakage of superconducting qubits in a large-scale quantum socket
- Improving the Time Stability of Superconducting Planar Resonators
- An engineering guide to superconducting quantum circuit shielding
- Resonant Coupling Parameter Estimation with Superconducting Qubits
- Aluminum air bridges for superconducting quantum devices realized using a single step electron-beam lithography process