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dc.contributor.authorKorol, Nataliya-
dc.contributor.authorMolnar, Dzhosiya-
dc.contributor.authorМолнар-Бабіля, Джосія Імреївна-
dc.contributor.authorSlivka, Mikhailo-
dc.date.accessioned2025-05-02T09:02:47Z-
dc.date.available2025-05-02T09:02:47Z-
dc.date.issued2025-
dc.identifier.urihttp://dspace.msu.edu.ua:8080/jspui/handle/123456789/12661-
dc.descriptionKorol Nataliya, Molnar Dzhosiya and Slivka Mikhailo Organic heterocyclic compounds as ionophores: recent progress in potentiometric sensing / Korol Nataliya, Molnar Dzhosiya and Slivka Mikhailo // Organic communications : scientific open access journal / Ed.-in-Chief Secen H. - Gebze, Kocaeli, Istanbul,Turkey : ACG Publications, 2025. - 18:1. - P. 3-16uk_UA
dc.description.abstractThis review article provides a comprehensive analysis of the advancements in organic heterocyclic compounds as ionophores for potentiometric sensors over the past decade. It highlights their critical role in modern analytical chemistry and their impact on sensor performance. Various classes of heterocyclic ionophores—including five-membered monoheterocyclic compounds (e.g., pyrazole and 1,2,4-triazole derivatives), pyridine derivatives, condensed heterocyclic compounds (such as indoles, quinazolines, cucurbiturils, benzimidazoles, benzothiazoles, carbazoles, and thiazines), Schiff bases, and macroheterocyclic compounds—are systematically reviewed. Special emphasis is placed on the design, synthesis, and optimization of these ionophores within polymer-based and PVC membrane electrodes, along with their key performance parameters such as linear concentration ranges, detection limits, response times, and ion selectivity. By analyzing research findings from the last 10 years, this review underscores the advantages of organic heterocyclic ionophores in terms of selectivity, stability, and versatility, making them highly suitable for applications in environmental monitoring, clinical diagnostics, food safety, and industrial analysis. Additionally, emerging trends and ongoing challenges in potentiometric sensor development are discussed, offering insights into future research directions in this rapidly evolving field.uk_UA
dc.language.isootheruk_UA
dc.subjectIonophoresuk_UA
dc.subjectіонофориuk_UA
dc.subjectpotentiometric sensorsuk_UA
dc.subjectпотенціометричні сенсориuk_UA
dc.subjection-selective electrodesuk_UA
dc.subjectіоноселективні електродиuk_UA
dc.subjectPVC membrane electrodesuk_UA
dc.subjectПВХ мембранні електродиuk_UA
dc.subjectsensor selectivityuk_UA
dc.subjectселективність сенсораuk_UA
dc.subjectmacroheterocyclic compoundsuk_UA
dc.subjectмакрогетероциклічні сполукиuk_UA
dc.titleOrganic heterocyclic compounds as ionophores: recent progress in potentiometric sensinguk_UA
dc.typeArticleuk_UA
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