Influence of complementary hydrogen bonds on mesogenic phases in ternary hydrogen bond liquid crystal complexes: experimental and theoretical approach

A ternary hydrogen-bond liquid crystalline complex is formed from compounds of 1,3-Phenylenediacetic acid, 4-(Octyloxy)benzoic acid and 4-Methoxycinnamic acid. The characteristic -OH (3554 cm−1) and C=O (1681 cm−1) stretching bands suggest complementary hydrogen bond formation. POM and DSC analyses revealed induced mesophases and its corresponding phase transition temperatures along with enthalpy changes. MEP analysis identified probable interaction sites, while IRI and IGMH analyses confirmed non-covalent interactions. Notably, the first-order hyperpolarizability is 57.68 times higher than that of urea, indicating enhanced NLO response. These findings enlighten the role of H-bonding in governing the mesomorphic and electronic properties of the ternary HBLC complex.

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Publication Details

Journal
Molecular Crystals and Liquid Crystals
Published
2026-09-24
DOI
https://doi.org/10.1080/15421406.2026.2736759
Primary Topic
Liquid Crystal Research Advancements
Type
article
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Influence of complementary hydrogen bonds on mesogenic phases in ternary hydrogen bond liquid crystal complexes: experimental and theoretical approach

Venkataraman Balasubramanian, Vellalapalayam Nallagounder Vijayakumar, Thangaiyan Chitravel, P. Valarmathi et al.
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Liquid Crystal Research Advancements
article

Influence of complementary hydrogen bonds on mesogenic phases in ternary hydrogen bond liquid crystal complexes: experimental and theoretical approach

Venkataraman Balasubramanian, Vellalapalayam Nallagounder Vijayakumar, Thangaiyan Chitravel, P. Valarmathi, Saravanakumar Masan, Kiranisha A
article en

Abstract

A ternary hydrogen-bond liquid crystalline complex is formed from compounds of 1,3-Phenylenediacetic acid, 4-(Octyloxy)benzoic acid and 4-Methoxycinnamic acid. The characteristic -OH (3554 cm−1) and C=O (1681 cm−1) stretching bands suggest complementary hydrogen bond formation. POM and DSC analyses revealed induced mesophases and its corresponding phase transition temperatures along with enthalpy changes. MEP analysis identified probable interaction sites, while IRI and IGMH analyses confirmed non-covalent interactions. Notably, the first-order hyperpolarizability is 57.68 times higher than that of urea, indicating enhanced NLO response. These findings enlighten the role of H-bonding in governing the mesomorphic and electronic properties of the ternary HBLC complex.

Molecular Crystals and Liquid Crystals
Goshen College (US), Anna University, Chennai (IN), Sona College of Technology (IN)
Openalex Percentile: Top 29%
Liquid Crystal Research Advancements
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