Single-flux-quantum-based Qubit Control with Tunable Driving Strength
- URL: http://arxiv.org/abs/2307.14140v1
- Date: Wed, 26 Jul 2023 12:12:30 GMT
- Title: Single-flux-quantum-based Qubit Control with Tunable Driving Strength
- Authors: Kuang Liu, Yifan Wang, Bo Ji, Wanpeng Gao, Zhirong Lin, Zhen Wang
- Abstract summary: Single-flux-quantum (SFQ) circuits have great potential in building cryogenic quantum-classical interfaces for scaling up superconducting quantum processors.
Current control schemes are difficult to tune the driving strength to qubits, which restricts the gate length and usually induces leakage to unwanted levels.
In this study, we design the scheme and corresponding pulse generator circuit to continuously adjust the driving strength by coupling SFQ pulses with variable intervals.
- Score: 14.8865192054034
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Single-flux-quantum (SFQ) circuits have great potential in building cryogenic
quantum-classical interfaces for scaling up superconducting quantum processors.
SFQ-based quantum gates have been designed and realized. However, current
control schemes are difficult to tune the driving strength to qubits, which
restricts the gate length and usually induces leakage to unwanted levels. In
this study, we design the scheme and corresponding pulse generator circuit to
continuously adjust the driving strength by coupling SFQ pulses with variable
intervals. This scheme not only provides a way to adjust the SFQ-based gate
length, but also proposes the possibility to tune the driving strength
envelope. Simulations show that our scheme can suppress leakage to unwanted
levels and reduce the error of SFQ-based Clifford gates by more than an order
of magnitude.
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