Precise control of entanglement in multinuclear spin registers coupled to defects
Evangelia Takou, Edwin Barnes, and Sophia E. Economou

TL;DR
This paper introduces a formalism for controlling and quantifying entanglement in large nuclear spin registers coupled to color centers, enabling efficient multipartite gates and high-fidelity entangled state preparation for quantum error correction.
Contribution
It develops a general method to precisely control entanglement in large nuclear spin registers coupled to color centers, including handling unwanted nuclei and implementing fast multipartite gates.
Findings
Exact measure of nuclear spin selectivity.
Reduction of gate time using dynamical decoupling sequences.
High-fidelity entangled state preparation demonstrated.
Abstract
Quantum networks play an indispensable role in quantum information tasks such as secure communications, enhanced quantum sensing, and distributed computing. Among the most mature and promising platforms for quantum networking are nitrogen-vacancy centers in diamond and other color centers in solids. One of the challenges in using these systems for networking applications is to controllably manipulate entanglement between the electron and the nuclear spin register despite the always-on nature of the hyperfine interactions, which makes this an inherently many-body quantum system. Here, we develop a general formalism to quantify and control the generation of entanglement in an arbitrarily large nuclear spin register coupled to a color center electronic spin. We provide a reliable measure of nuclear spin selectivity, by exactly incorporating into our treatment the dynamics with unwanted…
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Taxonomy
TopicsDiamond and Carbon-based Materials Research · Quantum and electron transport phenomena · Atomic and Subatomic Physics Research
