Bright Ratiometric Fluorescent Thermometer in a Spin Crossover Molecule toward Visualization of Spin-State Equilibria

Wang, Binbin;Kfoury, Joseph;Gong, Zijian;Oláh, Julianna;Garcia, Yann;et.al.
(2026) Journal of the American chemical society — Vol. 148, n° 4, p. 4414-4425 (2026)

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Authors
  • Wang, Binbin
    Author
  • Kfoury, Joseph
    Author
  • Gong, Zijian
    Author
  • Oláh, Julianna
    Author
  • Xue, ShufangUCLouvain
    Author
  • Guo, Yunnanorcid-logoUCLouvain
    Author
  • Garcia, Yannorcid-logoUCLouvain
    Author
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Abstract
Optically addressable molecular spins aim to tackle control and detection of weak magnetic moment when magnetic devices are scaled down to the single-molecule level. To achieve accurate readout of molecular spin states by adjacent luminescent probes, the molecular design must meet the stringent requirements of both high signal-to-noise ratio (SNR) and high sensitivity. Here, we incorporated a naphthalimide-based ratiometric fluorescent (RF) probe with a donor–acceptor (D–A) structure into a spin crossover (SCO) molecule. The probe features dual emission channels arising from a locally excited (LE) state and an intramolecular charge-transfer (ICT) state. The thermochromism associated with SCO spectrally overlaps with the probe’s RF bands, producing a reverse synergistic effect, achieving ratiometric fluorescent thermometers (RFTs) with 1.35% K–1 sensitivity and 66% fluorescence contrast. More importantly, the bright fluorescence thermochromism (∼50% quantum yield) is maintained throughout the entire SCO process, enabling direct visualization of spin-state equilibria with high SNR (>400) and detection resolution (0.0017) even at low concentrations of 10–4 M. This tuning of the single-fluorophore RF against SCO thermochromism provides a new design platform for the accurate readout of spin states of molecules.
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Citations

Wang, B., Kfoury, J., Gong, Z., Oláh, J., Zou, L., Xue, S., Guo, Y., & Garcia, Y. (2026). Bright Ratiometric Fluorescent Thermometer in a Spin Crossover Molecule toward Visualization of Spin-State Equilibria. Journal of the American chemical society, 148(4), 4414-4425. https://doi.org/10.1021/jacs.5c18528 (Original work published 2026)