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May 10, 2026Journal of the American Chemical Society2 citationsOpen Access

Experimental Quantification of Spin–Phonon Coupling in Molecular Qubits Using Inelastic Neutron Scattering

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SLStefan H. LohausKXKay T. XiaYCYongqiang Cheng

Key Points

  • The study aims to quantify spin-phonon coupling in molecular qubits using inelastic neutron scattering.
  • Utilized inelastic neutron scattering to measure spin-phonon coupling coefficients.
  • Analyzed contributions from distinct spectral regions to link crystal structure with spin relaxation.
  • Investigated structural distortions and their impact on anharmonic scattering.
  • SPC coefficients in CuOEP were nearly 3 orders of magnitude larger than in CuPc, enabling better spin coherence.
  • Structural distortions in CuOEP softened the crystal lattice but elevated stretching mode energy.
  • The findings establish a relationship between crystal structure, lattice dynamics, and spin relaxation.

Abstract

become thermally populated and drive relaxation with SPC coefficients nearly 3 orders of magnitude larger. Structural distortions in CuOEP that break planar symmetry soften the crystal lattice and enhance anharmonic scattering but also raise the energy of stretching modes at the molecular core where the spins reside. This redistributes vibrational energy toward the molecular periphery and out of plane, ultimately reducing SPC relative to CuPc and enabling room-temperature spin coherence in CuOEP. Although our method does not provide mode-specific SPC coefficients, it quantifies contributions from distinct spectral regions and establishes a broadly applicable, fully experimental link between crystal structure, lattice dynamics, and spin relaxation.

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Cite This Study

Lohaus et al. (2026) studied this question.

synapsesocial.com/papers/6a0021cdc8f74e3340f9cbbfhttps://doi.org/10.1021/jacs.6c03700
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