| Literature DB >> 29272584 |
Ziqi Hu1, Bo-Wei Dong1, Zheng Liu1, Jun-Jie Liu2, Jie Su1, Changcheng Yu1, Jin Xiong1, Di-Er Shi1, Yuanyuan Wang1, Bing-Wu Wang1, Arzhang Ardavan2, Zujin Shi1, Shang-Da Jiang1, Song Gao1.
Abstract
An anisotropic high-spin qubit with long coherence time could scale the quantum system up. It has been proposed that Grover's algorithm can be implemented in such systems. Dimetallic aza[80]fullerenes M2@C79N (M = Y or Gd) possess an unpaired electron located between two metal ions, offering an opportunity to manipulate spin(s) protected in the cage for quantum information processing. Herein, we report the crystallographic determination of Gd2@C79N for the first time. This molecular magnet with a collective high-spin ground state (S = 15/2) generated by strong magnetic coupling (JGd-Rad = 350 ± 20 cm-1) has been unambiguously validated by magnetic susceptibility experiments. Gd2@C79N has quantum coherence and diverse Rabi cycles, allowing arbitrary superposition state manipulation between each adjacent level. The phase memory time reaches 5 μs at 5 K by dynamic decoupling. This molecule fulfills the requirements of Grover's searching algorithm proposed by Leuenberger and Loss.Entities:
Year: 2018 PMID: 29272584 DOI: 10.1021/jacs.7b12170
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419