Aug 2026· Journal of Physical Chemistry Letters· Vol 17, pp. 10378 - 10387· 0 citations· 59 references
Medicine
Abstract
Perylene bisimides (PBIs) are prime building blocks for functional supramolecular architectures, yet mapping their salt-induced self-assembly kinetics under physiological conditions remains challenging, due to rapid aggregation and overwhelming fluorescence. Here, we combine fluorescence stopped-flow kinetics and stimulated Raman scattering (SRS) spectroscopy to decipher the electrolyte-controlled polymerization of a spermine-functionalized PBI. We found that self-assembly obeys an anticooperative K2–K pathway, where nucleation yields rapid and salt-independent dimers. In contrast, polymer growth is strongly salt-dependent, with polymer dissociation rates decreasing as NaCl concentration increases. Crucially, chloride ions selectively stabilize the growing assemblies by drastically suppressing the monomer release, establishing a Michaelis–Menten-type saturation profile. To link these kinetic trajectories with molecular-scale structural rearrangements, SRS is used to effectively suppress the fluorescence background, revealing that the relative intensity of low-frequency Raman modes, associated with high-mass displacement and structurally delocalized in nature, are drastically reduced upon aggregation. This vibrational suppression underscores the role of packing constraints and excitonic pressure within the cofacial H-aggregates. By directly bridging macroscale kinetic pathways with microscopic vibrational dynamics, this work offers a generalizable framework to rationally design and tune water-soluble supramolecular materials for biomedical and optoelectronic applications.
The bulk and surface charge-driven interfacial structuring of two 1-decyl-3-methylimidazolium (C10C1Im) orthoborate ionic liquids (ILs), dispersed at various concentrations in the polar aprotic solvent propylene carbonate (PC), were studied using small angle neutron scattering (SANS) and neutron reflectivity (NR). In t...
G. Pilkington, O. Hammond, E. Bergendal et al.· Langmuir· 0 citations
Overcoming the long-standing trade-off between efficiency and radiative rate in metal-free phosphorescence remains a central challenge in molecular photophysics and is pivotal for the next-generation optoelectronic technologies. Here, we demonstrate that tuning the strength of anion-π+ interactions in pyridinium-based...
Eetu Hakkarainen, Corentin Montagne, H. Lin et al.· Angewandte Chemie· 0 citations
The scalable fabrication of covalently cross-linked hydrogel electrolytes is often constrained by the energy-intensive nature of conventional initiation methods, which rely on heat or ultraviolet irradiation. Such approaches not only consume significant energy but also provide limited control over polymer network forma...
High-temperature proton exchange membrane fuel cells (HT-PEMFCs) are attractive for their high fuel-impurity tolerance and simplified water/thermal management, but their performance is often limited by phosphoric acid (PA) loss from the membrane, especially below 100 °C, where condensed water accelerates PA leaching. H...
Tingting Li, Yi Zhang, Peng Zuo et al.· Chemical Science· 0 citations
Ionic liquids (ILs) are now an established and ubiquitous material class. In energy applications and electroresponsive lubrication, their interfacial self-assembly is crucial for their properties. This in turn is determined by chemical structure and a local hierarchy of Coulombic, van der Waals, and solvophobic interac...
O. Hammond, Guillaume Bousrez, Stuart J. Brown et al.· Science Advances· 0 citations
Water-soluble alanine-functionalized perylene diimide derivatives (PDI-Ala) were synthesized by introducing alanine units at the imide positions of the PDI framework. Their photoluminescence properties and supramolecular aggregation behavior were investigated in solvents of varying polarity. Chiral L-PDI-Ala displayed...
Di Fan, Fan Qi, Nan Li et al.· Molecules· 0 citations
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