A Solid-State Thin-Film Ag/AgCl Reference Electrode Coated with Graphene Oxide and Its Use in a pH Sensor
<p>Schematic of the SSRE fabrication process. The sensing part of the electrode is 2 mm in diameter. (<b>a</b>) Deposition of Cr and Ag by a sputter process; (<b>b</b>) SSRE coated with graphene oxide; (<b>c</b>) Cross-sectional view of the electrode.</p> "> Figure 2
<p>The SSRE coated with GO and the pH working electrode were built on a square-shaped glass substrate. (<b>a</b>) Schematic showing the individual parts of the sensor; (<b>b</b>) Photograph of the actual sensor fabricated on a glass substrate; (<b>c</b>) Photograph of the sensor packaged in an SD card; (<b>d</b>) Laboratory-made potentiometer that was used in the integrated pH sensor.</p> "> Figure 3
<p>Changes in the surface morphology of the electrode as observed using SEM: (<b>a</b>–<b>c</b>) non-heat-treated electrodes and (<b>d</b>–<b>f</b>) electrodes heat-treated at 320 °C. (The magnification of the images in (<b>a</b>–<b>g</b>) is × 5 K, that for images in the insets of (<b>a</b>–<b>f</b>) and (<b>h</b>) is × 50 K, and that for the image in (<b>i</b>) is × 2 K. Images of the Ag and Ag/AgCl thin films after the following steps are shown: (<b>a</b>) before the heat treatment, (<b>d</b>) after the heat treatment, (<b>b</b>,<b>e</b>) after chlorination with 50 mM FeCl<sub>3</sub>, and (<b>c</b>,<b>f</b>) after overnight storage in a saturated AgCl solution. (<b>g</b>) GO layer on a ready-to-use electrode. (<b>h</b>) and (<b>i</b>) show cross-sectional and top views of the pristine GO layer, respectively.</p> "> Figure 4
<p>AFM images of the SSRE showing its surface morphology. Images (<b>a</b>) and (<b>b</b>) show the morphology before and after the electrode was coated with GO, respectively.</p> "> Figure 5
<p>EDS analysis of the electrode surface. (<b>a</b>) GO layer formed on a silicon wafer (shown for comparison); (<b>b</b>) GO layer on a thin film of Ag/AgCl.</p> "> Figure 6
<p>Effect of pH on the SSRE and the long-term stability of the SSRE. (<b>a</b>) Stability of the SSRE at pH levels ranging from 2.38 to 11.61 in the acid-to-base direction and <span class="html-italic">vice versa</span>. The potentials were measured using the ORE as the reference electrode; (<b>b</b>) Potentials and response times of the SSRE were measured in a 3 M KCl solution at intervals of 2 or 3 days over 26 days.</p> "> Figure 7
<p>Comparison of the CV curves of the ORE and SSRE for scan rates of 25, 50, 100, 150 and 200 mV/s. (<b>a</b>) and (<b>b</b>) are the CV curves for the ORE (plotted for comparison), and (<b>c</b>) and (<b>d</b>) are the curves for the SSRE. The solid circles (●) and boxes (■) in (<b>b</b>) and (<b>d</b>) stand for the cathodic and anodic peak currents, respectively. (The measurements were made three times. The error bars for the values were not shown as the difference in the currents was smaller than 0.5 μA.)</p> "> Figure 8
<p>The combined pH sensor and the electrochemical workstation were used for measuring the potentials. The potentials measured with the pH sensor are represented by the straight (―) and dotted (---) lines. The numbers in the graph indicate the pH. (<b>a</b>) and (<b>b</b>) show the proportional relation between the pH and the potentials in the acid-to-base direction and <span class="html-italic">vice versa</span>, respectively (the measurements were made three times, and the arrows indicate the direction for pH sensing).</p> "> Figure 9
<p>The integrated pH sensors were evaluated in various solutions of different pH values. (<b>a</b>) The integrated pH sensors with an electrochemical workstation, and (<b>b</b>) the integrated pH sensors packaged in an SD card with the laboratory-made potentiometer were used for potential measurements. Each inset indicates the experimental setup used for the test. (The error bars were not shown as the difference in the potentials was smaller than 10 mV for both (<b>a</b>) and (<b>b</b>).)</p> ">
Abstract
:1. Introduction
2. Experimental Section
2.1. Fabrication of the SSRE
2.2. Observation of Surface Morphology of SSRE
2.3. Open-Circuit Potential and Cyclic Voltammetry
2.4. Fabrication of Laboratory-Made pH Sensor and Potentiometer
3. Results and Discussion
3.1. Surface Morphology and Chemical Analysis of SSRE
3.2. Effect of pH on the SSRE and the Long-Term Stability of the SSRE
3.3. Cyclic Voltammetry Measurements
3.4. Performances of the Laboratory-Made pH Sensor with the SSRE
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Kim, T.Y.; Hong, S.A.; Yang, S. A Solid-State Thin-Film Ag/AgCl Reference Electrode Coated with Graphene Oxide and Its Use in a pH Sensor. Sensors 2015, 15, 6469-6482. https://doi.org/10.3390/s150306469
Kim TY, Hong SA, Yang S. A Solid-State Thin-Film Ag/AgCl Reference Electrode Coated with Graphene Oxide and Its Use in a pH Sensor. Sensors. 2015; 15(3):6469-6482. https://doi.org/10.3390/s150306469
Chicago/Turabian StyleKim, Tae Yong, Sung A Hong, and Sung Yang. 2015. "A Solid-State Thin-Film Ag/AgCl Reference Electrode Coated with Graphene Oxide and Its Use in a pH Sensor" Sensors 15, no. 3: 6469-6482. https://doi.org/10.3390/s150306469