Acceptor-driven synergy in dihydropyridine-based compounds reveals giant static and frequency-dependent
Khansa Gull1, Memoona Arshad1, Sadia Jamal1
1Institute of Chemistry, Khwaja Fareed University of Engineering & Information Technology Rahim Yar Khan 64200 Pakistan rifat.jawaria@kfueit.edu.pk.
None:
Dihydropyridine carbonitrile derivatives exhibit strong nonlinear optical (NLO) performance due to efficient charge-transfer properties, making them promising for optical applications. In current study, dihydropyridine carbonitrile based compounds (CTP1-CTP6) were designed by structural modeling of reference compound (CTPR) with malononitrile-based acceptors for utilization as NLO materials. All quantum chemical calculations were performed via DFT and TD-DFT methods at the M06/6-311G(d,p) level of theory. The designed molecules have donor-π-acceptor (D-π-A) framework, and this push-pull archiecture was improved by the introduction of electron-withdrawing moiety on acceptors. FMO analysis revealed small energy gaps and effective charge transfer from donor to acceptor regions. The absorbance maxima varied from 412 to 584 nm, indicating a redshift in optical behavior. The significant NLO properties were investigated in CTP4, including average polarizability (1.443 × 10-22 esu), first-order hyperpolarizability (9.279 × 10-28 esu), and second hyperpolarizability (4.231 × 10-33 esu), owing to its good optoelectronic properties. The first hyperpolarizability shows a remarkable enhancement, with a maximum value of 9.279 × 10-28 esu (CTP4), which is nearly 102-103 times higher than that of para-nitroaniline (p-NA), the standard reference compound. These findings qualitatively indicate that structural modification can greatly enhance the charge-transfer efficiency and quantitatively make the studied systems promising for high-performance optoelectronic and photonic applications.
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