Supramolecular Light-Harvesting Nanoarchitectonics Toward Self-Locked Logic Gates

Xuanyu Wang, Zhao Gao, Wei Tian

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Supramolecules are considered a promising approach for molecular logic gates due to their inherent dynamic responsiveness driven by non-covalent forces. However, the lack of input sequence dependence in these logic gates may lead to misinterpretation of outputs, compromising their reliability. This study proposes an efficient universal supramolecular Förster resonance energy transfer (FRET) platform for logic gates with self-locking features. Specifically, well-designed naphthalene-based monomers serve as energy donors, while dyes such as eosin Y (EY), rhodamine B (RhB), and sulforhodamine 101 (SR101), spanning from yellow to red, are employed as energy acceptors. Leveraging large exciton migration rates (1.21 × 1014 to 1.36 × 1014 L mol−1 s−1) between donor and acceptors, FRET processes are effectively facilitated. Building upon this framework, supramolecular logic gates with self-locking features are successfully constructed. Notably, in these logic gates, even with the correct truth table, any deviation in the order of inputs can lead to alterations in the original outputs.

Original languageEnglish
Article number2401463
JournalAdvanced Optical Materials
Volume12
Issue number31
DOIs
StatePublished - 5 Nov 2024

Keywords

  • energy transfer
  • light harvesting
  • logic gates
  • self-assembly
  • supramolecular materials

Fingerprint

Dive into the research topics of 'Supramolecular Light-Harvesting Nanoarchitectonics Toward Self-Locked Logic Gates'. Together they form a unique fingerprint.

Cite this