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Updated: May 10, 2025

Scanning-probe Single-electron Capacitance Spectroscopy
Published on: July 30, 2013
Single-Frequency Effective Capacitance C ec and Membrane Resistance Z Readout for Solid-Contact Ion-Selective
Tingting Han1, Sini Chen1, Tao Song2
1Center for Advanced Analytical Science, Guangzhou Key Laboratory of Sensing Materials & Devices, Guangdong Engineering Technology Research Center for Photoelectric Sensing Materials & Devices, Key Laboratory of Optoelectronic Materials and Sensors in Guangdong Provincial Universities, School of Chemistry and Chemical Engineering, Guangzhou University, Guangzhou 510006, P.R. China.
Abstract:
Here, we propose new single-frequency effective capacitance C ec and membrane resistance Z readout principle for solid-contact ion-selective electrodes (SCISEs). Conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) doped with polystyrenesulfonate (PSS-), i.e., PEDOT(PSS), as solid contact and valinomycin-based membrane were prepared for K+-SCISEs. At high frequencies, the membrane resistance of K+-SCISEs corresponding to impedance absolute value Z was recorded constantly as KCl aqueous solution diluted with water. The membrane resistance Z increases as the electrolyte concentration decreases. Under identical dilution steps, the linear slope of the logarithmic membrane resistance logZ vs loga K+ for K+-SCISEs with the spin-coated membrane is larger than that of the electrode covered with the drop-cast membrane. As the K+-SCISE resistance with the spin-coated membrane was reduced to hundreds of Ω, the logZ of K+-SCISEs is linearly proportional to loga K+ in the range of -1 to -3.4, providing a possibility of utilizing membrane resistance Z as a calibration-free analytical signal for SCISEs. The effective capacitance C ec of K+-SCISEs with the spin-coated membrane was performed in 0.1 M KCl applied with single frequency ranging from 1 MHz and decreases by a factor of 10 to 10 mHz. The obtained C ec of K+-SCISEs with the spin-coated membrane is linearly proportional to logfin the range of 1 MHz to 10 Hz with a slope of ca. -0.97, while at a low frequency ranging from 1 Hz to 10 mHz, the linear slope of logC ec vs logf is suppressed, where Warburg diffusion takes effect. Furthermore, the membrane resistance Z is independent of applied high frequencies, and the effective capacitance C ec is independent of the excitation amplitude.
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