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February 6, 2026Angewandte Chemie0 citations

Harnessing Exciton Flux With a Single‐Stranded DNA‐Programmed Nanodevice

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MDMulin DuanYZYan ZhouHZHaoran Zheng

Key Points

  • To create a single-stranded DNA-directed nanodevice that efficiently manages exciton energy levels through innovative interactions.
  • Constructing a nanodevice that utilizes single-stranded DNA for assembly.
  • Employing asymmetric π–π interactions to manage energy levels in fluorophores.
  • Using various DNA lengths and nanocluster ligands to control energy transfer efficiency.
  • Achieved a quenching efficiency of 94.3%.
  • Demonstrated effective control over exciton flux and energy transfer pathways.
  • Validated the programmable nanodevice's ability to switch between radiative and non-radiative energy pathways.

Abstract

ABSTRACT Natural and artificial nanosystems rely on functional module assembly, yet overcoming thermodynamic incompatibility in atomically precise nanodevice integration remains challenging. Here, we construct a single‐stranded DNA (ssDNA)‐directed nanodevice that achieves 94.3% quenching efficiency by harnessing asymmetric π–π interactions to split exciton energy levels. DNA spatial confinement orchestrates hydrophobic, covalent, and π–π interactions, enabling precise component arrangement. This nanodevice comprises a light‐harvesting engine, a vibrational metal nanocluster actuator and a programmable ssDNA. Asymmetric π–π interactions between fluorophore and metal nanocluster in DNA spatial confinements split fluorophore energy levels, directing exciton flux. Complementary DNA strands modulate engine‐actuator coupling, enabling enthalpy‐driven switching between radiative and non‐radiative pathways. By tuning DNA length and nanocluster ligands, we achieve continuous control over energy transfer efficiency. This programmable platform, manipulating non‐radiative decay via π–π interactions, establishes vibrational control as a general paradigm for nanoscale energy transduction.

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Cite This Study

Duan et al. (2026) studied this question.

synapsesocial.com/papers/698585fe8f7c464f23009e0bhttps://doi.org/10.1002/ange.202525693
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