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March 13, 2026Small3 citations

Circularly Polarized Luminescence (CPL)‐Active Homo‐ and Heterostructures by Surface‐Catalyzed Secondary Supramolecular Polymerization

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YKYaiswarya Das KarmakarPKPayel KhanraBGBijoy Ghosh

Key Points

  • The aim is to explore the role of secondary nucleation in supramolecular polymerization and its effect on CPL.
  • Investigated secondary nucleation in amide-functionalized naphthalene monoimide derivatives.
  • Conducted polymerization in a methylcyclohexane:decane mixture over 48 hours.
  • Analyzed structural evolution from metastable particles to crystalline nanorods.
  • Performed control experiments with a similar analogue to assess the necessity of a methylene spacer.
  • Achieved a high quantum yield of 34% and a luminescence dissymmetry factor of ∼0.088.
  • Demonstrated improved CPL intensity correlating with structural evolution over time.
  • Observed that O-NMI-2 lacks CPL activity, confirming the importance of the methylene spacer.
  • Produced CPL-active heterostructures via hetero-seeded polymerization from CPL-silent components.

Abstract

Surface-catalyzed secondary nucleation is well-known in protein aggregation but underexplored in supramolecular polymerization of π-systems. Herein, we report a unique example of multistep secondary nucleation-dominated controlled supramolecular polymerization of an amide-functionalized naphthalene monoimide derivative (O-NMI-1) in a methylcyclohexane:decane mixture, undergoing a stepwise transformation from a metastable particle to crystalline nanorods via intermediate nanotapes over 48 h. The resulting hydrogen-bonded nanorods display enhanced emission, a high quantum yield (34%) and strong circularly polarized luminescence (CPL), revealing an unprecedented correlation between their structural evolution and the time-dependent increment in the CPL intensity, reaching an appreciably high luminescence dissymmetry factor (glum) of ∼0.088 in the film state. Contrastingly, the seeded polymerization of O-NMI-1 follows a fragmentation-dominated mechanism, yielding unexpected fragmented nanorods in multi-seeding cycles. Control experiments with a structurally similar analogue (O-NMI-2), lacking a methylene spacer, revealed no CPL, highlighting the spacer's crucial role in controlling the excited-state chiral emission. The contrasting behavior between the two monomers enabled hetero-seeded polymerization of O-NMI-1 nanorods from O-NMI-2 fibrillar seeds, producing CPL-active unique heterostructures under kinetic control from two initial CPL-silent components. The present findings unveil the overlooked impact of secondary nucleation in temporal control of supramolecular chirality and CPL-activity in homo- and heterostructures of supramolecular polymers.

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Cite This Study

Karmakar et al. (2026) studied this question.

synapsesocial.com/papers/69b3abe702a1e69014ccd2d0https://doi.org/10.1002/smll.202512262
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