A Nuclear Chemical Descriptor Based on NMR Databases for Molecular Information: Characterization of π-Conjugated Oligomers
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Structure-property relationships of increasing systems such as conjugated oligomers, atomic chains, and H-bonding networks constitute a problem involving multiple variables in quantum chemical studies. Defining a single parameter that allows investigating different properties of these systems (or even those belonging to a specific chemical group) is not always a simple task. Thus, it is difficult to rationalize the evolution of molecular properties of increasing molecular systems, assigning relevant physicochemical information correlated to their size and structure. For conjugated oligomers, we have been working with a nuclear magnetic resonance (NMR)-based descriptor using the fluctuations of indirect spin-spin coupling constants (SSCCs) between two adjacent 13 C nuclei ( 1 J CC ) in the p-conjugated system. This parameter is called J-coupling alternation (JCA), which systematically gathers information from structural and electronic properties, allowing a rational evaluation of the molecular properties of growing oligomers. Here, we employ JCA to obtain correlations with vibrational, electronic, and optical properties of conjugated oligomers, belonging to the groups of polypyrrole (PPy), polyfuran (PFu), polythiophene (PTh), and polyselenophene (PSe). This analysis yields excellent linear structure-property relationships, confirming the ability of JCA to characterize realistically different families of p-conjugated oligomers, and providing a reliable parameter to design efficient molecular materials.