High-fidelity geometric quantum gates with short paths on
superconducting circuits
- URL: http://arxiv.org/abs/2102.03553v1
- Date: Sat, 6 Feb 2021 10:13:05 GMT
- Title: High-fidelity geometric quantum gates with short paths on
superconducting circuits
- Authors: Sai Li, Jing Xue, Tao Chen, and Zheng-Yuan Xue
- Abstract summary: We propose a scheme to realize nonadiabatic geometric quantum gates with short paths based on simple pulse control techniques.
Specifically, we illustrate the idea on a superconducting quantum circuit, which is one of the most promising platforms for realizing practical quantum computer.
- Score: 5.666193021459319
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Geometric phases are robust against certain types of local noises, and thus
provide a promising way towards high-fidelity quantum gates. However, comparing
with the dynamical ones, previous implementations of nonadiabatic geometric
quantum gates usually require longer evolution time, due to the needed longer
evolution path. Here, we propose a scheme to realize nonadiabatic geometric
quantum gates with short paths based on simple pulse control techniques,
instead of deliberated pulse control in previous investigations, which can thus
further suppress the influence from the environment induced noises.
Specifically, we illustrate the idea on a superconducting quantum circuit,
which is one of the most promising platforms for realizing practical quantum
computer. As the current scheme shortens the geometric evolution path, we can
obtain ultra-high gate fidelity, especially for the two-qubit gate case, as
verified by our numerical simulation. Therefore, our protocol suggests a
promising way towards high-fidelity and roust quantum computation on a
solid-state quantum system.
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