Potentiometric Selectivity of Potassium Ion-Selective Electrodes Based on Silane- and Disiloxane-Bridged Bis(15-crown-5) Ionophores

Potassium-selective ionophores with high selectivity and chemical stability are essential for electrochemical sensing in clinical, biological, and environmental analysis. Here, three new silane- and disiloxane-bridged bis(15-crown-5) derivatives—two silane-bridged isomers bearing two octyl groups (1) or two 2-ethylhexyl groups (2), and a disiloxane-bridged derivative bearing four isopropyl groups (3)—were synthesized and evaluated as ionophores for poly(vinyl chloride) membrane ion-selective electrodes (ISEs). The ISEs based on 1–3 exhibited near-Nernstian responses to K+. Electrodes based on silane-bridged 1 and 2 showed higher K+ selectivity over Li+, Na+, Mg2+, and Ca2+ than the commercially available pimelate-bridged bis(benzo-15-crown-5) ionophore 4, and their selectivity was comparable to that of valinomycin for most of the metal cations examined. Notably, compound 2, bearing bulky 2-ethylhexyl groups, showed exceptional tolerance in strongly acidic media and maintained a nearly constant K+/Na+ selectivity (potentiometric selectivity coefficient, log kK,Na » −3.4) for more than 200 days under intermittent dry-storage conditions, whereas the ISE based on 4 showed a marked loss of selectivity after approximately 100 days. Disiloxane-bridged 3 also exhibited high K+ selectivity and acid tolerance. Overall, sterically optimized silane/disiloxane bridging units offer an effective strategy for designing durable, high-performance synthetic K+ ionophores.

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Journal
Electrochem
Published
2026-09-16
DOI
https://doi.org/10.3390/electrochem7030027
Primary Topic
Analytical Chemistry and Sensors
Type
article
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Potentiometric Selectivity of Potassium Ion-Selective Electrodes Based on Silane- and Disiloxane-Bridged Bis(15-crown-5) Ionophores

Shoichi Katsuta, Manami Sano
Electrochem
Analytical Chemistry and Sensors
article

Potentiometric Selectivity of Potassium Ion-Selective Electrodes Based on Silane- and Disiloxane-Bridged Bis(15-crown-5) Ionophores

Shoichi Katsuta, Manami Sano
article en

Abstract

Potassium-selective ionophores with high selectivity and chemical stability are essential for electrochemical sensing in clinical, biological, and environmental analysis. Here, three new silane- and disiloxane-bridged bis(15-crown-5) derivatives—two silane-bridged isomers bearing two octyl groups (1) or two 2-ethylhexyl groups (2), and a disiloxane-bridged derivative bearing four isopropyl groups (3)—were synthesized and evaluated as ionophores for poly(vinyl chloride) membrane ion-selective electrodes (ISEs). The ISEs based on 1–3 exhibited near-Nernstian responses to K+. Electrodes based on silane-bridged 1 and 2 showed higher K+ selectivity over Li+, Na+, Mg2+, and Ca2+ than the commercially available pimelate-bridged bis(benzo-15-crown-5) ionophore 4, and their selectivity was comparable to that of valinomycin for most of the metal cations examined. Notably, compound 2, bearing bulky 2-ethylhexyl groups, showed exceptional tolerance in strongly acidic media and maintained a nearly constant K+/Na+ selectivity (potentiometric selectivity coefficient, log kK,Na » −3.4) for more than 200 days under intermittent dry-storage conditions, whereas the ISE based on 4 showed a marked loss of selectivity after approximately 100 days. Disiloxane-bridged 3 also exhibited high K+ selectivity and acid tolerance. Overall, sterically optimized silane/disiloxane bridging units offer an effective strategy for designing durable, high-performance synthetic K+ ionophores.

ElectrochemVol. 7(3)
Chiba University (JP)
Responsible consumption and production
Openalex Percentile: Top 22%
Analytical Chemistry and Sensors
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