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From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding
Published on: March 24, 2018
Crystal-Field Effects on Dipole Moments and Static First Hyperpolarizability in Noncentrosymmetric Ionic Organic
Salviano A Leão1, Augusto César de Jesus1, Marcos A Castro1
1Instituto de Física, Universidade Federal de Goiás, Goiânia 74690-900, GO, Brazil.
Abstract:
Understanding how crystal fields modify local nonlinear optical responses is essential for the rational design of acentric ionic organic crystals. Here, we investigate a structurally diverse set of noncentrosymmetric push-pull ionic crystals, including classical stilbazolium benchmarks and 6MNEP-related GUR/GUS crystals identified by their CCDC refcodes, to evaluate how electrostatic embedding affects the dipole moment and total static first hyperpolarizability (βtot) of asymmetric units. A self-consistent electrostatic-embedding approach combined with density functional theory (DFT) and time-dependent-DFT (TD-DFT) calculations was used to compare isolated and in-crystal ion-pair responses within a consistent local-descriptor framework. The results show that the crystal field does not act as a uniform amplifier or suppressor of βtot. Instead, its effect depends on the local electrostatic environment, ion-pair organization, and tensor-component balance. Classical stilbazolium salts generally retain large embedded hyperpolarizabilities, with DAPSH, DSTMS, DSCHS, and DSNS-1 among the most responsive systems. In contrast, most 6MNEP-related GUR/GUS crystals show substantial attenuation of βtot upon embedding, while DSCHS, DSNS-1, and the structurally related MBST salt display enhanced embedded responses relative to their isolated counterparts. These results indicate that favorable local crystal-field alignment and contact patterns can reinforce, rather than suppress, the molecular response in selected cases. Overall, explicit crystal embedding provides a useful comparative strategy for analyzing how ion-pair composition and lattice organization modulate local dipolar and hyperpolarizability descriptors in ionic organic Organic nonlinear optical (NLO) crystals.
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