Accurate Quantum Logic Gates by Spin Echo in Rydberg Atoms
Xiao-Feng Shi

TL;DR
This paper proposes a high-fidelity controlled-phase quantum gate for neutral Rydberg atoms using spin echo to suppress blockade errors, potentially achieving error rates below 10^-5, simplifying implementation without complex pulse shaping or ground-state cooling.
Contribution
It introduces a spin echo sequence that significantly reduces blockade errors in Rydberg quantum gates, enhancing fidelity without complex techniques.
Findings
Blockade error can be suppressed to order of 10^-6.
Gate error limited by Rydberg decay can be below 10^-5.
The method is robust against qubit drift and requires less complex control.
Abstract
Scalable quantum computing is based on realizable accurate quantum gates. For neutral atoms, it is an outstanding challenge to design a high-fidelity two-qubit entangling gate without resorting to difficult techniques like shaping laser pulses or cooling atoms to motional ground states. By using spin echo to suppress the blockade error, we propose an easily realizable controlled-phase Rydberg quantum gate of high intrinsic fidelity. In the context of spin echo, we show that the fundamental blockade error of the traditional Rydberg gate, on the order of , actually results from two `clockwise' rotations of Rabi frequencies . In our `echo' sequence, such an error can be suppressed to the order of by adding two `anticlockwise' rotations with frequencies . With the blockade error effectively removed,…
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