Symmetry-Selective Franck–Condon and Herzberg–Teller Coupling Enables Ultra-Narrow Blue Phosphorescence in Pt(II) Complexes

Abstract High color purity remains a critical limitation in deep-blue phosphorescent materials. The origin of ultranarrow emission (10–14 nm) in trans-(NHC)2Pt(C≡C–C≡C–R)2 complexes (Pt-TMS, R = TMS; Pt-Ph, R = Ph) is elucidated through a symmetry-guided vibronic coupling analysis. Direction-dependent Pt–ligand donation interaction, reinforced by the trans effect, localizes the excitation on the butadiynyl ligand (Bdiy) and confines the T1→S0 transition dipole moment to the x-axis. Under C2V symmetry constraints, vibronic coupling becomes strongly mode-selective, yielding a dominant 0–0 emission character. In Pt-TMS, σ–π isolation induces vibrational mode decoupling, preserving the low-frequency TMS rotational modes with large displacements, which generate vibrational focusing and enable Franck–Condon (FC) activity, while symmetry suppresses Herzberg–Teller (HT) contributions, minimizing vibronic broadening. In Pt-Ph, π-conjugation reduces out-of-plane phenyl vibrational displacements that are symmetry-allowed for HT coupling, leading to vibrational confinement that suppresses HT-induced spectral broadening and maintains narrowband emission. Moreover, vibrational focusing in Pt-TMS enhances both radiative and nonradiative decay rates, whereas vibrational confinement in Pt-Ph suppresses structural relaxation and internal conversion. These results identify vibrational focusing and vibrational confinement as complementary mechanisms underlying vibronic regulation in ultranarrowband phosphorescent emitters.

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Publication Details

Journal
Inorganic Chemistry
Published
2026-09-21
DOI
https://doi.org/10.1021/acs.inorgchem.6c03486
Primary Topic
Organic Light-Emitting Diodes Research
Type
article
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article

Symmetry-Selective Franck–Condon and Herzberg–Teller Coupling Enables Ultra-Narrow Blue Phosphorescence in Pt(II) Complexes

Xiao‐Chun Hang, Cong Zhang, Wenhuan Wang
Inorganic Chemistry
Organic Light-Emitting Diodes Research
article

Symmetry-Selective Franck–Condon and Herzberg–Teller Coupling Enables Ultra-Narrow Blue Phosphorescence in Pt(II) Complexes

Xiao‐Chun Hang, Cong Zhang, Wenhuan Wang
article en

Abstract

Abstract High color purity remains a critical limitation in deep-blue phosphorescent materials. The origin of ultranarrow emission (10–14 nm) in trans-(NHC)2Pt(C≡C–C≡C–R)2 complexes (Pt-TMS, R = TMS; Pt-Ph, R = Ph) is elucidated through a symmetry-guided vibronic coupling analysis. Direction-dependent Pt–ligand donation interaction, reinforced by the trans effect, localizes the excitation on the butadiynyl ligand (Bdiy) and confines the T1→S0 transition dipole moment to the x-axis. Under C2V symmetry constraints, vibronic coupling becomes strongly mode-selective, yielding a dominant 0–0 emission character. In Pt-TMS, σ–π isolation induces vibrational mode decoupling, preserving the low-frequency TMS rotational modes with large displacements, which generate vibrational focusing and enable Franck–Condon (FC) activity, while symmetry suppresses Herzberg–Teller (HT) contributions, minimizing vibronic broadening. In Pt-Ph, π-conjugation reduces out-of-plane phenyl vibrational displacements that are symmetry-allowed for HT coupling, leading to vibrational confinement that suppresses HT-induced spectral broadening and maintains narrowband emission. Moreover, vibrational focusing in Pt-TMS enhances both radiative and nonradiative decay rates, whereas vibrational confinement in Pt-Ph suppresses structural relaxation and internal conversion. These results identify vibrational focusing and vibrational confinement as complementary mechanisms underlying vibronic regulation in ultranarrowband phosphorescent emitters.

Inorganic Chemistry
Nanjing Tech University (CN)
Openalex Percentile: Top 21%
Organic Light-Emitting Diodes Research
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Symmetry-Selective Franck–Condon and Herzberg–Teller Coupling Enables Ultra-Narrow Blue Phosphorescence in Pt(II) Complexes — Xiao‐Chun Hang, Cong Zhang, et al. · Inorganic Chemistry (2026) | TGRS Research Map | TGRS