English

Host-guest Crystal Engineering Tailors the Room Temperature Spin Dynamics in Molecular Quantum Devices

Quantum Physics 2026-07-17 v1 Chemical Physics

Abstract

Molecular materials that enable coherent control over an electron's spin state at room temperature are promising candidates for quantum technologies, including quantum sensors and ultra-low noise microwave amplifiers, known as masers. Host-guest molecular crystals enable independent control of spin-active guests and their local environments to enhance molecular spin properties and so improve device performance. Using electron paramagnetic resonance and optically-detected magnetic resonance, we demonstrate the ability to tune triplet population, depopulation, and spin-lattice relaxation by modulating host-dependent lattice rigidity and vibrational coupling to significantly reduce the operating requirements for building useful masers. Importantly, the most rigid host, picene, reveals the ability to slow spin-lattice relaxation without lengthening triplet lifetime, though at the cost of strain-induced line width broadening and reduced triplet spin polarisation. We also find that deuteration reduces the triplet resonance line width and vibrationally-mediated triplet depopulation. Consequently, we find that perdeuterated pentacene in perdeuterated p-terphenyl is the most viable candidate for building a continuous wave maser. This work demonstrates host-guest engineering as an important and practical method for tuning the spin-dependent performance of room-temperature molecular quantum technologies.

Keywords

Cite

@article{arxiv.2607.16466,
  title  = {Host-guest Crystal Engineering Tailors the Room Temperature Spin Dynamics in Molecular Quantum Devices},
  author = {Ziqiu Huang and Angus Cowley-Semple and Irena Nevjestic and Yifan Yu and Mark Oxborrow and Sam L. Bayliss and Sarah K. Mann and Max Attwood},
  journal= {arXiv preprint arXiv:2607.16466},
  year   = {2026}
}

Comments

12 pages, 7 figures