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The Jekyll and Hyde Nature of Tetrazoles in Polymer Science: From Intrinsic Electronic Duality to Programmable
Meryem S Akdemir1, Hatice Mutlu1,2,3,4,5
1Fachbereich Chemie, Technische Polymerchemie, Rheinland-Pfalzer Technische Universität Kaiserslautern-Landau (RPTU), Kaiserslautern, Deutschland.
Abstract:
Nature encodes stability and responsiveness within single-molecule frameworks, creating systems that remain structurally persistent while retaining access to activated functional states. Tetrazoles embody this principle in synthetic chemistry by combining aromatic persistence with latent reactivity within a single nitrogen-rich heterocycle. Their intrinsic "Jekyll-Hyde" duality arises from a polarized electronic structure governed by the substitution pattern, which acts as an electronic switch between adaptive, triggerable, and structurally persistent regimes. Although tetrazoles are widely used in small-molecule chemistry, they remain comparatively underexplored as electronically programmable motifs in polymer science. Their polarity, ion-binding ability, and photoreactivity are often exploited individually rather than integrated into a broader structure-function framework. This Minireview presents a unifying concept linking tetrazole substitution patterns to electronic identity and, consequently, to macromolecular function in polymer systems. Monosubstituted tetrazoles enable adaptive acid-base responsiveness, hydrogen bonding, and ionic network formation. In contrast, 2,5-disubstituted tetrazoles serve as photoaddressable precursors for nitrile imine-mediated ligation, covalent fixation, and fluorescent readout, whereas regio-defined 1,5-disubstituted tetrazoles provide electronically locked, highly polar heteroaromatic motifs for persistent polymer architectures. Thus, the mini-review examines how synthetic strategy governs the formation and preservation of these substitution-defined tetrazole motifs during polymer synthesis, establishing practical design principles for rational development of functional polymer materials.
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