AI Article Synopsis

  • The study investigates the complex interactions between kinetic and thermodynamic states during peptide self-assembly, focusing on how these influence the formation of supramolecular structures.
  • A unique chiroptical switching phenomenon is identified, which is dependent on factors like temperature, denaturation, and cosolvent content, showcasing its rarity and significance in the field.
  • The research highlights the potential for creating responsive peptide-based nanomaterials, paving the way for innovative applications that enable control over material properties through the manipulation of self-assembled systems.

Article Abstract

Herein, we explore the intricate pathway complexity, focusing on the dynamic interplay between kinetic and thermodynamic states, during the supramolecular self-assembly of peptides. We uncover a multiresponsive chiroptical switching phenomenon influenced by temperature, denaturation and content of cosolvent in peptide self-assembly through pathway complexity (kinetic thermodynamic state). Particularly noteworthy is the observation of chiroptical switching during the denaturation process, marking an unprecedented phenomenon in the literature. Furthermore, the variation in cosolvent contents produces notable chiroptical switching effects, emphasizing their infrequent incidence. Such chiroptical switching yields switchable piezoresponsive peptide-based nanomaterials, demonstrating the potential for dynamic control over material properties. In essence, our work pioneers the ability to control piezoresponsive behavior by transforming nanostructures from kinetic to thermodynamic states through pathway complexity. This approach provides new insights and opportunities for tailoring material properties in self-assembled systems.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11409859PMC
http://dx.doi.org/10.1039/d4sc05016aDOI Listing

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