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February 5, 2026ACS Nano2 citationsOpen Access

Unveiling Spin Transition at Single-Particle Level in Levitating Spin Crossover Nanoparticles

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EPElena Pinilla‐CienfuegosLMLucas Mascaró-BurgueraRTRamón Torres‐Cavanillas

Key Points

  • This research aims to investigate spin transitions at the level of individual levitating nanoparticles to enable innovative nanophotonic devices.
  • Trapping nanoparticles using a quadrupole Paul trap coupled with a multispectral polarization-resolved scattering microscope.
  • Employing laser heating for light-driven manipulation of spin state.
  • Monitoring spin transitions in a pressure-tunable environment for precise control.
  • Demonstrated reversible optovolumetric changes of up to 10% in spin crossover nanoparticles.
  • Identified precise switching thresholds at the single-particle level.
  • Established mechanical control methods over spin bistability, confirming versatile manipulation capabilities.

Abstract

The ability to control and understand phase transitions of individual nanoscale building blocks is key to advancing the next generation of low-power reconfigurable nanophotonic devices. To address this critical challenge, molecular nanoparticles (NPs) exhibiting spin crossover (SCO) phenomenon are trapped by coupling a quadrupole Paul trap to a multispectral polarization-resolved scattering microscope. This contact-free platform simultaneously confines, optically excites, and monitors the spin transition in Fe(II)-triazole NPs in a pressure-tunable environment, eliminating substrate artifacts. Thus, we demonstrate light-driven manipulation of the spin transition in levitating NPs, enabled by laser heating and free of substrate-induced effects. Using the robust spin bistability near room temperature of our SCO system, we quantify reversible optovolumetric changes of up to 10%, revealing precise switching thresholds at the single-particle level. Independent pressure modulation produces a comparable volume increase, confirming mechanical control over the same bistable transition. These results constitute full real-time control and readout of spin states in levitating SCO NPs, with operating conditions compatible with ultralow-power optical switching, data storage, and nanoscale sensing.

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Cite This Study

Pinilla‐Cienfuegos et al. (2026) studied this question.

synapsesocial.com/papers/698434b4f1d9ada3c1fb3294https://doi.org/10.1021/acsnano.5c18794
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