Dispersion‐Driven Cooperativity in Alkyl Perylene Diimide Oligomers: Insights from Density Functional Theory

Author:

Sahu Rahul1ORCID,Yamijala Sharma S. R. K. C.2345ORCID,Rao Kotagiri Venkata6ORCID,Reddy Sandeep K.1ORCID

Affiliation:

1. Centre for Computational and Data Sciences Indian Institute of Technology Kharagpur Kharagpur West Bengal, Pin 721302 India

2. Department of Chemistry Centre for Atomistic Modelling and Materials Design Centre for Quantum Information, Communication, and Computing Centre for Molecular Materials and Functions Indian Institute of Technology Madras Chennai 600036 Tamil Nadu, Pin India

3. Centre for Atomistic Modelling and Materials Design Indian Institute of Technology Madras Chennai Tamil Nadu, Pin 600036 India

4. Centre for Quantum Information, Communication, and Computing Indian Institute of Technology Madras Chennai Tamil Nadu, Pin 600036 India

5. Centre for Molecular Materials and Functions Indian Institute of Technology Madras Chennai Tamil Nadu, Pin 600036 India

6. Department of Chemistry Indian Institute of Technology Hyderabad Kandi Sangareddy, Telangana, Pin 502285 India

Abstract

AbstractThe cooperative mechanism is of paramount importance in the synthesis of supramolecular polymers with desired characteristics, including molecular mass, polydispersity, and morphology. It is primarily driven by the presence of intermolecular interactions, which encompass strong hydrogen bonding, metal‐ligand interactions, and dipole‐dipole interactions. In this study, we utilize density functional theory and energy decomposition analysis to investigate the cooperative behavior of perylene diimide (PDI) oligomers with alkyl chains at their imide positions, which lack the previously mentioned interactions. Our systematic examination reveals that dispersion interactions originating from the alkyl side‐chain substituents play an important role in promoting cooperativity within these PDIs. This influence becomes even more pronounced for alkyl chain lengths beyond hexyl groups. The energy decomposition analysis reveals that the delicate balance between dispersion energy and Pauli repulsion energy is the key driver of cooperative behavior in PDIs. Additionally, we have developed a mathematical model capable of predicting the saturated binding energies for PDI oligomers of varying sizes and alkyl chain lengths. Overall, our findings emphasize the previously undervalued significance of dispersion forces in cooperative supramolecular polymerization, enhancing our overall understanding of the cooperative mechanism.

Funder

Science and Engineering Research Board

Publisher

Wiley

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