Readout and Control Techniques Towards Scalable Superconducting Quantum Processors
Doktorsavhandling, 2025

The realization of fault-tolerant quantum computing requires the execution of quantum error-correction (QEC) schemes, to mitigate the fragile nature of qubits. In this context, to ensure the success of QEC, a protocol capable of implementing both qubit reset and leakage reduction is highly desirable together with the ability to perform fast and high-fidelity readout of the qubit s’ quantum states. In this thesis, we tackle both these challenges in an architecture consisting of fixed-frequency transmon qubits pair-wise coupled via tunable couplers. We demonstrate a readout scheme that combines two microwave techniques: applying a shelving technique to the qubits that reduces the contribution of decay error during readout, and a two-tone excitation of the readout resonators to distinguish among qubits’ populations in higher energy levels. We perform single-shot frequency-multiplexed qubit readout, with a 140 ns readout time, and demonstrate 99.5% assignment fidelity for two-state readout and 96.9% for three-state readout - without using a quantum-limited amplifier. We also demonstrate a reset scheme that is fast, unconditional, and achieves fidelities well above 99%, thus enabling fixed-frequency qubit architectures as future implementations of fault-tolerant quantum computers. Our reset protocol uses the tunable couplers to transfer any undesired qubits’ excitation to the readout resonators of the qubits, from which this excitation decays into the feedline. In total, the combination of qubit reset, leakage reduction, and coupler reset takes only 83 ns to complete. This reset protocol also provides a means to both reduce QEC cycle runtime and improve algorithmic fidelity on quantum processors.

Quantum Computing

Transmons

Qubit Control and Readout

Superconducting Circuits

Kollektorn, MC2

Författare

Liangyu Chen

Kvantteknologi doktorander

Fast unconditional reset and leakage reduction in fixed-frequency transmon qubits

Quantum SWAP gate realized with CZ and iSWAP gates in a superconducting architecture

A small footprint travelling-wave parametric amplifier with a high Signal-to-Noise Ratio improvement in a wide band

Building quantum computers presents a significant challenge due to the inherent fragility of quantum bits, or qubits. These qubits are the fundamental units where quantum information is stored and processed. In practice, we need precise qubits' control and measurement techniques to realize a functional quantum computer.

This thesis directly addresses these challenges within superconducting quantum computing, a leading approach in the field. It explores advanced techniques for purposefully designed superconducting circuits, fabricated with aluminum on silicon wafers and manipulated with microwave signals. These techniques enhance the reliability and efficiency of two crucial operations: reading information from qubits and resetting them for subsequent computations. Improving these processes is essential for implementing quantum error correction, a vital component in developing powerful quantum computers capable of solving complex problems.

Ultimately, this work contributes to the ongoing pursuit of scalable and fault-tolerant quantum computers based on superconducting circuits. By providing valuable insights and practical methods for improved qubit control, this thesis hopes to advance us towards realizing the transformative potential of quantum computation in the near future.

Wallenberg Centre for Quantum Technology (WACQT)

Knut och Alice Wallenbergs Stiftelse (KAW 2017.0449, KAW2021.0009, KAW2022.0006), 2018-01-01 -- 2030-03-31.

Styrkeområden

Nanovetenskap och nanoteknik

Ämneskategorier (SSIF 2025)

Nanoteknik

Fysik

Data- och informationsvetenskap (Datateknik)

Elektroteknik och elektronik

ISBN

978-91-8103-185-0

Doktorsavhandlingar vid Chalmers tekniska högskola. Ny serie: 5643

Utgivare

Chalmers

Kollektorn, MC2

Mer information

Senast uppdaterat

2025-02-19