English

Room-temperature quantum sensing with photoexcited triplet electrons in organic crystals

Quantum Physics 2025-02-26 v2 Mesoscale and Nanoscale Physics Chemical Physics

Abstract

Quantum sensors have notably advanced high-sensitivity magnetic field detection. Here, we report quantum sensors constructed from polarized spin-triplet electrons in photoexcited organic chromophores, specifically focusing on pentacene-doped para-terphenyl ({\approx}0.1%). We demonstrate essential quantum sensing properties at room temperature: electronic optical polarization and state-dependent fluorescence contrast, by leveraging differential pumping and relaxation rates between triplet and ground states. We measure high optically detected magnetic resonance (ODMR) contrast 16.8%{\approx}16.8\% of the triplet states at room temperature, along with long coherence times under spin echo and CPMG sequences, T2=2.7μT_2{=}2.7\mus and T2DD=18.4μT_2^{DD}{=}18.4\mus respectively, limited only by the triplet lifetimes. The material offers several advantages for quantum sensing, including the ability to grow large (cmcm-scale) crystals at low cost, the absence of paramagnetic impurities, and the diamagnetism of electronic states used for sensing when not optically illuminated. Utilizing pentacene as a representative of a broader class of spin triplet-polarizable organic molecules, this study highlights new potential for quantum sensing in chemical systems.

Keywords

Cite

@article{arxiv.2402.13898,
  title  = {Room-temperature quantum sensing with photoexcited triplet electrons in organic crystals},
  author = {Harpreet Singh and Noella D'Souza and Keyuan Zhong and Emanuel Druga and Julianne Oshiro and Brian Blankenship and Jeffrey A. Reimer and Jonathan D. Breeze and Ashok Ajoy},
  journal= {arXiv preprint arXiv:2402.13898},
  year   = {2025}
}