Classification and Selection of Electrode Solutions: pH Calibration, ORP Maintenance, and Supporting Systems for Ion-Selective Electrodes
Classification and Selection of Electrode Solutions: pH Calibration, ORP Maintenance, and Supporting Systems for Ion-Selective Electrodes
Electrode solutions are used in multiple steps, including calibration, storage, soaking, cleaning, internal filling, ionic strength adjustment, and standard curve establishment. For pH electrodes, ORP combination electrodes, conductivity electrodes, and ion-selective electrodes, solution selection directly affects response speed, slope, zero-point drift, ion activity correction, and long-term stability.
Keywords: electrode solutions; pH standard buffer; pH electrode protection solution; ORP standard solution; conductivity standard solution; ion-selective electrode; TISAB solution; electrode cleaning solution
1 Basic Classification of Electrode Solutions
1.1 Classification by Use Stage
Electrode solutions should first be classified according to their use stage rather than only by chemical composition. The same type of salt solution may function as an internal filling solution, salt bridge solution, standard solution, or background electrolyte in different scenarios. These functions are different and cannot be simply substituted for one another.
(1) Calibration solutions
Calibration solutions are used to establish the relationship between instrument readings and standard values, including pH standard buffers, ORP standard solutions, and conductivity standard solutions. Their core requirements are clearly defined standard values, specified temperature conditions, and avoidance of contamination after opening.
(2) Protection and soaking solutions
Protection and soaking solutions are used to maintain the stability of electrode membranes, reference junction interfaces, and sensing elements. pH electrodes should not be stored in pure water for extended periods when not in use; the corresponding electrode protection or soaking solution should be used instead.
(3) Cleaning solutions
Cleaning solutions are used to remove contamination from the liquid junction, glass membrane, or combination electrode surface. General contamination can be treated with pH/ORP cleaning solution, while delayed responses caused by protein-containing samples are more suitably treated with protein cleaning solution.
(4) Standard solutions
Ion-selective electrode standard solutions are used to establish the response curve for the target ion. A 0.1 M standard solution is more suitable for preparing molar concentration gradients, whereas a 1000 ppm standard solution is more suitable for mass concentration systems and environmental sample analysis.
(5) Filling solutions
Filling solutions are used to maintain a stable internal ionic environment in ion-selective electrodes. Filling solutions for different ion-selective electrodes are not interchangeable and should be matched to the target electrode type.
(6) Ionic strength adjusters
Ionic strength adjusters are used to equalize the total ionic strength of standards and samples so that electrode response mainly reflects the activity of the target ion. Fluoride detection commonly uses a TISAB system to control pH, ionic strength, and complexation interference simultaneously.
1.2 Classification by Electrode Type
(1) pH electrodes
pH electrodes mainly use pH standard buffers, pH electrode protection solutions, pH/ORP combination electrode soaking solutions, and cleaning solutions. The key is to maintain the hydration layer of the glass membrane and ensure normal conduction at the reference junction.
(2) ORP electrodes
ORP electrodes mainly use ORP standard solutions, soaking solutions, and cleaning solutions. ORP standard solutions are used to check whether the electrode potential response has shifted; they are not used to adjust the redox state of samples.
(3) Conductivity electrodes
Conductivity electrodes require conductivity standard solutions for calibration. The selected standard should be close to the conductivity range of the sample. Low-conductivity water samples and conventional electrolyte solutions should not be covered simply by the same calibration point.
(4) Ion-selective electrodes
Ion-selective electrodes usually require standard solutions, filling solutions, and ionic strength adjusters as a supporting system. If only standard solutions are used while filling solutions and ionic strength adjusters are ignored, abnormal slope, response drift, or sample matrix bias may occur.
Table 1 Classification and functional positioning of electrode solutions
Solution Type | Main Function | Typical Product Type | Applicable Electrode/System | Selection Focus |
pH standard buffer | Establish pH calibration curve | pH 2.00, 4.00/4.01, 6.86/7.00, 9.18, 10.00 buffers | pH meter, pH combination electrode | Calibration points should cover the sample pH range |
Electrode protection solution | Maintain membrane hydration and liquid junction stability | pH electrode protection solution | pH glass electrode, combination electrode | Avoid long-term storage in pure water |
Electrode soaking solution | Restore electrode response | pH/ORP combination electrode soaking solution | pH/ORP combination electrode | Used for electrodes long unused or with delayed response |
Electrode cleaning solution | Remove contaminants | pH/ORP cleaning solution, protein cleaning solution | pH electrode, ORP electrode | Select according to contamination type |
ORP standard solution | Check redox potential response | ORP standard solution | ORP electrode | Pay attention to temperature and electrode surface condition |
Conductivity standard solution | Calibrate conductivity readings | KCl conductivity standard solution, electrolyte conductivity reference material | Conductivity electrode | Standard value should be close to the sample range |
ISE standard solution | Establish target ion response curve | 0.1 M standard solution, 1000 ppm standard solution | Ion-selective electrode | Select according to target ion |
ISE filling solution | Maintain internal electrode stability | Filling solutions for different ion-selective electrodes | Ion-selective electrode | Different electrodes are not interchangeable |
Ionic strength adjuster | Equalize ionic strength and reduce matrix effects | ISA, TISAB solution | Ion-selective electrode | Match target ion and sample system |
2 Solutions for pH and ORP Electrodes
2.1 pH Standard Buffers
pH standard buffers are used for pH electrode calibration, not for electrode storage. In practice, calibration points should be selected according to the pH range of the sample, and single-point calibration should not be used to cover the entire measurement range.
(1) Acidic calibration points
pH 2.00, pH 4.00, and pH 4.01 buffers are suitable for calibration before measuring acidic samples. If samples are in a strongly acidic range, a pH 2.00 buffer helps improve the reliability of readings in the low-pH range.
(2) Neutral calibration points
pH 6.86 or pH 7.00 buffers are commonly used as calibration points near the zero point to check the reference reading of the electrode and instrument status. In routine two-point or three-point calibration, the neutral point should generally not be omitted.
(3) Alkaline calibration points
pH 9.18 and pH 10.00 buffers are suitable for measuring alkaline samples. Alkaline buffers are easily affected by CO₂ in air. After opening, exposure time should be minimized, and electrodes should not directly introduce contaminants into the buffer.
2.2 pH Electrode Protection and Soaking Solutions
pH electrode protection solution and pH/ORP combination electrode soaking solution are used to maintain glass membrane hydration, reference system stability, and liquid junction continuity. When an electrode is stored for a long time or shows delayed response, the condition of the protection solution, soaking solution, and liquid junction should be checked first.
(1) Protection solution
pH electrode protection solution is used for electrode storage and can reduce the risk of glass membrane drying, reference solution dilution, and liquid junction instability. Pure water is suitable only for short-term rinsing and is not suitable for long-term electrode storage.
(2) Soaking solution
pH/ORP combination electrode soaking solution is suitable for restoring electrode response before use, especially for electrodes that have been unused for a long time, show reading drift, or have a significantly prolonged response time.
(3) Application boundaries
Protection and soaking solutions are not standard buffers and cannot be used as pH calibration solutions. After storage, the electrode should be rinsed and surface liquid gently removed before calibration in standard buffer solutions.
2.3 pH/ORP Cleaning Solutions
Electrode cleaning should be selected according to the type of contamination. General inorganic salts, mild contamination, and sample residues can be treated with pH/ORP cleaning solution. Delayed response caused by protein-containing samples, biological samples, culture media, or colloidal systems is more suitably treated with pH/ORP protein cleaning solution.
(1) General contamination
General contamination is manifested by reading drift, slower response, or decreased calibration slope. After cleaning, the electrode should be rinsed with pure water and then placed in protection or soaking solution for recovery.
(2) Protein contamination
Protein contamination often blocks the liquid junction or covers the glass membrane surface, and simple rinsing with water is usually insufficient to restore response. Protein cleaning solution is suitable for electrodes used in serum, culture media, protein solutions, and biological sample measurements.
(3) Calibration after cleaning
After cleaning, pH or ORP electrodes should be recalibrated or checked against standard solutions before they are used for critical sample measurements.
2.4 ORP Standard Solutions
ORP standard solutions are used to check whether the response of an oxidation-reduction potential electrode has shifted. ORP readings are jointly affected by electrode surface condition, reference system, temperature, and sample chemistry. Therefore, checking with a standard solution is mainly used to evaluate electrode status, not to correct the sample itself.
(1) Response check
If the reading in an ORP standard solution deviates significantly, platinum electrode surface contamination, reference system condition, and soaking/maintenance conditions should be checked first.
(2) Temperature effect
The reference potential of an ORP standard solution is usually temperature-dependent, so reading interpretation should be based on the measurement temperature.
(3) Maintenance logic
After long-term storage, ORP electrodes should first be soaked to restore response, then checked with a standard solution. If necessary, they should be cleaned and retested.
3 Solutions for Ion-Selective Electrodes
3.1 Selection Logic for Supporting Solution Systems
Ion-selective electrode detection usually requires a coordinated system of “standard solution, filling solution, and ionic strength adjuster.” The standard solution establishes the response curve, the filling solution maintains the internal electrode environment, and the ionic strength adjuster reduces differences in sample matrix so that results more closely reflect changes in target ion activity.
(1) Standard solutions
0.1 M standard solutions are suitable for preparing molar concentration gradients, while 1000 ppm standard solutions are suitable for environmental water samples, industrial water samples, and routine mass concentration systems. The concentration range of standards should cover the sample concentration range, and a single high-concentration point should not be used to extrapolate low-concentration samples.
(2) Filling solutions
Filling solutions should be selected according to electrode type. Fluoride, chloride, sodium, potassium, calcium, nitrate, ammonium, and heavy metal ion electrodes have different internal systems, and filling solutions are not interchangeable.
(3) Ionic strength adjusters
Ionic strength adjusters are used to equalize the ionic strength of standards and samples. For complex matrices, high-salt systems, or samples containing complexes, it should first be confirmed whether the adjuster changes the free form of the target ion.
3.2 Fluoride Ion Electrodes and the TISAB System
Fluoride detection is sensitive to pH, metal complexes, and ionic strength; therefore, TISAB solution is commonly used. TISAB I, TISAB III, and TISAB IV can be used in fluoride determination to control pH, adjust ionic strength, and reduce complexation interference.
(1) pH control
Under acidic conditions, fluoride ions may form HF, affecting electrode response. The TISAB system can control pH within a range suitable for fluoride determination.
(2) Control of complexation interference
Metal ions such as Al³⁺ and Fe³⁺ may form complexes with fluoride ions, reducing the concentration of free fluoride. TISAB can reduce part of this complexation interference, making the measurement closer to the total fluoride level responsive to the electrode.
(3) Matching of standards and samples
Fluoride standard solutions and samples should be mixed with the same volume ratio of TISAB to ensure consistent conditions for calibration curves and sample measurements.
3.3 Common Anion-Selective Electrode Solutions
Chloride, nitrate, bromide, iodide, cyanide, sulfide, and other anion-selective electrodes all require corresponding standard solutions, filling solutions, and ionic strength adjusters. These measurements should focus on similar anions, strongly complexing ions, and the redox state of the sample.
(1) Chloride ion electrodes
Chloride ion-selective electrodes are suitable for Cl⁻ detection in water samples, environmental samples, and industrial samples. If samples contain Br⁻, I⁻, or Ag⁺, electrode selectivity and precipitation interference should be considered.
(2) Nitrate ion electrodes
Nitrate ion electrodes are suitable for water bodies, soil extracts, or nutrient-related testing. Strongly interfering anions or high ionic strength backgrounds can affect response, so supporting adjusters should be used.
(3) Bromide and iodide ion electrodes
Bromide and iodide detection requires attention to cross-interference among halide ions. Standard solutions, filling solutions, and ionic strength adjusters should be matched to the target ion system.
3.4 Common Cation-Selective Electrode Solutions
Sodium, potassium, calcium, ammonium, silver, copper, lead, cadmium, and other cation-selective electrodes can be used for water quality, industrial process, environmental sample, and selected experimental system analysis. Metal ion detection requires particular attention to complexing agents, precipitants, and sample pH.
(1) Sodium and potassium ion electrodes
Sodium and potassium electrodes are commonly used for ion activity analysis in water samples, electrolyte solutions, or biological-related systems. High concentrations of background ions and similar cations may affect electrode selectivity.
(2) Calcium ion electrodes
Calcium ion electrodes measure responses related to free Ca²⁺. EDTA, phosphate, proteins, and organic ligands in the sample can alter free calcium concentration, so sample chemical composition must be considered during interpretation.
(3) Ammonium and ammonia ion electrodes
Ammonium- and ammonia-related systems are strongly affected by pH. Standard solutions, filling solutions, and ionic strength adjusters should be matched to the target detected species to avoid bias caused by changes in the NH₄⁺/NH₃ equilibrium.
(4) Heavy metal ion electrodes
Copper, lead, cadmium, silver, and other ion-selective electrodes are suitable for target metal ion detection, but complexing agents, sulfides, halide ions, and precipitation reactions in samples may significantly affect free ion response.
Table 2 Key points for selecting supporting solutions for ion-selective electrodes
Electrode Type | Required Supporting Solutions | Main Purpose | Selection Focus |
Fluoride ion electrode | Fluoride standard solution, filling solution, TISAB solution | Control pH, ionic strength, and complexation interference | Standards and samples should contain the same TISAB ratio |
Chloride ion electrode | Chloride standard solution, filling solution, ionic strength adjuster | Establish Cl⁻ response curve | Pay attention to Br⁻, I⁻, and Ag⁺ interference |
Sodium ion electrode | Sodium standard solution, filling solution, ionic strength adjuster | Determine Na⁺ activity | Control potential interference from K⁺, NH₄⁺, etc. |
Potassium ion electrode | Potassium standard solution, filling solution, ionic strength adjuster | Determine K⁺ activity | Pay attention to NH₄⁺ and high Na⁺ background |
Calcium ion electrode | Calcium standard solution, filling solution, ionic strength adjuster | Determine free Ca²⁺ | Avoid complexation by EDTA, phosphate, and proteins |
Nitrate ion electrode | Nitrate standard solution, filling solution, ionic strength adjuster | Determine NO₃⁻ | Pay attention to strongly interfering anions and high-salt backgrounds |
Ammonium/ammonia electrode | Ammonium/ammonia standard solution, filling solution, ionic strength adjuster | Determine ammonium ion or ammonia-related indicators | pH affects NH₄⁺/NH₃ equilibrium |
Heavy metal ion electrode | Copper, lead, cadmium, silver standard solutions and supporting solutions | Determine free metal ion response | Pay attention to complexation, precipitation, and sample pH |
4 Selection of Electrochemical Test Media and Supporting Electrolytes
4.1 Role of Supporting Electrolytes
Supporting electrolytes are mainly used to increase solution conductivity, reduce ohmic drop, stabilize ionic strength, and minimize the influence of migration current from target electroactive species on test results. In cyclic voltammetry, chronoamperometry, open-circuit potential measurement, corrosion electrochemistry, and sensor evaluation, the choice of supporting electrolyte affects background current, potential window, peak shape, and repeatability.
(1) Aqueous systems
Aqueous systems commonly use chloride, nitrate, sulfate, or buffer salt systems. If the test target is sensitive to Cl⁻, or if the system contains ions such as Ag⁺, Pb²⁺, or Hg²⁺ that readily precipitate or complex with Cl⁻, KCl or NaCl should not be used directly as the background electrolyte.
(2) Buffer systems
pH-sensitive reactions, enzyme electrodes, biosensors, and environmental water sample testing usually require buffer systems to maintain stable pH. Phosphate, acetate, Tris, and other systems can be used across different pH ranges, but their interactions with metal ions, calcium/magnesium ions, or target analytes should be considered.
(3) Non-aqueous systems
Non-aqueous electrochemistry is often used for organic molecules, complexes, or testing within wide potential windows. These systems require supporting electrolytes compatible with organic solvents, and water, oxygen, and background impurities must be strictly controlled. If the article focuses on routine ready-to-use electrode solutions, non-aqueous systems can be included as a supplementary note rather than as the key focus for product selection.
4.2 Matching Counter Electrode Solutions with the Test System
Counter electrode solutions are used in specific electrochemical test devices to maintain charge transfer and system stability at the counter electrode side. Selection should consider compatibility with the working electrode reaction system, separator, reference electrode, and sample solution. If the counter electrode solution differs greatly in ionic composition from the sample system, liquid junction potential, ion migration, or background reaction interference may be introduced.
5 Selection of Calibration Solutions, Standard Solutions, and Electrode Maintenance Solutions
5.1 pH Standard Buffers
pH standard buffers are used for pH electrode calibration, not for electrode storage. In practice, calibration points should be selected according to the sample pH range. Acidic samples can be calibrated with pH 4.00/4.01 and pH 6.86/7.00 buffers, while alkaline samples can be calibrated with pH 6.86/7.00 and pH 9.18/10.00 buffers. Three-point calibration is recommended for high-precision measurements.
(1) Acidic calibration points
pH 2.00, pH 4.00, or pH 4.01 buffers are suitable for calibration before measuring acidic samples. If the sample is strongly acidic, a pH 2.00 calibration point should be included to improve accuracy in the low-pH range.
(2) Neutral calibration points
pH 6.86 or pH 7.00 buffers are commonly used as calibration points near the pH electrode zero point to check electrode response and instrument baseline.
(3) Alkaline calibration points
pH 9.18 or pH 10.00 buffers are suitable for alkaline sample measurement. Alkaline buffers are susceptible to CO₂ in air, so prolonged exposure after opening should be minimized.
5.2 pH/ORP Electrode Storage and Cleaning Solutions
pH electrode protection solutions and pH/ORP combination electrode soaking solutions are used to maintain glass membrane hydration, liquid junction stability, and electrode response speed. pH/ORP cleaning solutions are used to remove general contamination, while protein cleaning solutions are more suitable for liquid junction blockage or delayed response caused by protein-containing samples.
(1) Storage solutions
Storage solutions are used for electrode standby and long-term storage and cannot be replaced with pure water. Pure water is suitable only for short-term rinsing, not for soaking storage.
(2) Soaking solutions
Soaking solutions are suitable for restoring response before electrode use, especially for pH/ORP combination electrodes that have been unused for a long time, respond slowly, or show reading drift.
(3) Protein cleaning solutions
Protein samples, culture media, biological samples, or colloidal samples can readily contaminate the liquid junction. Such contamination should be treated with protein cleaning solution rather than rinsing with water alone.
5.3 ORP Standard Solutions and Conductivity Standard Solutions
ORP standard solutions are used to check whether oxidation-reduction potential electrode readings have shifted. Conductivity standard solutions are used to calibrate conductivity electrodes. Both belong to standard systems for confirming instrument and electrode status and cannot replace sample test solutions.
(1) ORP standard solutions
ORP standard solutions are mainly used for response checks. If the reading deviation is large, platinum electrode surface contamination, reference system condition, and temperature should be checked first.
(2) Low-conductivity standard solutions
Low-conductivity standard solutions such as 147.4 μS/cm are suitable for calibration before measurement of low-ionic-strength water samples or purified water.
(3) Conventional conductivity standard solutions
Standard solutions such as 1000 μS/cm and 1410 μS/cm are suitable for conductivity calibration of routine water samples, buffers, and general electrolyte solutions.
6 Cleaning, Maintenance, and Troubleshooting of Common Abnormalities
6.1 Delayed Response of pH/ORP Electrodes
Delayed response of pH/ORP electrodes is often associated with glass membrane drying, liquid junction contamination, protein residue, or improper storage. The recommended workflow is cleaning first, soaking for recovery, and recalibration afterward.
(1) Mild contamination
pH/ORP cleaning solution can be used for mild contamination. After cleaning, rinse with pure water, gently remove surface droplets, and then place the electrode in protection or soaking solution for recovery.
(2) Protein contamination
Serum, culture media, protein solutions, and biological samples can readily cause liquid junction blockage and should be treated with pH/ORP protein cleaning solution.
(3) Long-term unused electrodes
Electrodes that have been unused for a long time should first be restored using soaking solution. Calibration should be performed only after stable readings are confirmed.
6.2 Abnormal Conductivity and ORP Readings
Abnormal conductivity readings are usually related to calibration solution selection, temperature compensation, probe contamination, or changes in the electrode constant. Abnormal ORP readings are often associated with platinum surface contamination, reference system condition, or instability of the sample redox system.
(1) Conductivity abnormalities
Conductivity standard solutions close to the sample range should be used first for checking. Low-conductivity samples should not be judged only by extrapolation from high-conductivity standards.
(2) ORP abnormalities
The ORP electrode status should first be checked with an ORP standard solution, and then the stability of the sample redox system itself should be evaluated.
(3) Retesting after maintenance
After cleaning or soaking, electrodes should be verified again using standard solutions. Normal electrode function should not be inferred only from faster reading recovery.
Table 3 Electrode contamination and abnormality troubleshooting directions
Abnormality | Possible Cause | Recommended Treatment | Notes |
pH reading drift | Insufficient glass membrane hydration, unstable liquid junction | Restore using protection or soaking solution | Recalibration is required before retesting |
Slow pH response | Protein contamination, sample residue, membrane surface contamination | Use pH/ORP cleaning solution or protein cleaning solution | Select cleaning solution according to contamination type |
ORP reading shift | Platinum surface contamination, abnormal reference system | Check with ORP standard solution; clean if necessary | ORP standard solution is used for checking, not for adjusting samples |
Conductivity deviation | Mismatched standard solution, abnormal temperature compensation | Use conductivity standard solution close to the sample range | Low-conductivity samples require low-conductivity standards |
Abnormal ISE slope | Expired standard solution, wrong filling solution, mismatched ISA | Replace standard solution, filling solution, and adjuster | Standard and sample matrices should be consistent |
Poor ISE repeatability | Large differences in sample ionic strength, interfering ions | Add corresponding ionic strength adjuster | Do not substitute ISA between different electrode systems |
7 Common Errors in Solution Selection
7.1 Using Storage Solution as Calibration Solution
Storage solutions are used to maintain electrode condition and cannot serve as standard measurement systems. The pH value of a pH electrode storage or soaking solution does not represent a standard pH buffer.
7.2 Long-Term Storage of pH Electrodes in Pure Water
Pure water disrupts the ionic balance of the glass membrane and reference system, causing slower response and increased drift. Pure water is suitable for rinsing, but not for long-term storage.
7.3 Performing Only Single-Point pH Calibration
Single-point calibration only corrects readings near one range and cannot verify electrode slope. Acidic, alkaline, or high-precision samples should be measured after two-point or three-point calibration.
7.4 Using Only Standard Solutions for Ion-Selective Electrodes
ISE detection requires not only standard solutions, but also filling solutions and ionic strength adjusters. If ionic strength adjustment is ignored, systematic errors may arise from differences in activity coefficients between standards and samples.
7.5 Ignoring the Chemical Form of the Target Ion
Fluoride, calcium, ammonium, and heavy metal ions can all be affected by pH, complexation, precipitation, or ionic equilibrium. During detection, attention should be paid to the difference between free ion concentration and total concentration.
8 Related Reagent and Material Selection
Table 4 Selection of electrode calibration, maintenance, and ion-selective electrode supporting solutions
Cat. No. | Product Name | Specification/Concentration | Application Module | Application Positioning |
PH Buffer Standard Solution |
| pH calibration | Used for routine pH electrode calibration and instrument status checking | |
pH Buffer Standard Solution(pH=2.00±0.02) | pH=2.00±0.02 (20℃) | pH calibration | Used for pH electrode calibration in strongly acidic measurement ranges | |
pH Buffer Standard Solution(pH=4.00±0.02) | pH=4.00±0.02 (25℃) | pH calibration | Used for pH electrode calibration before acidic sample measurement | |
pH Buffer Standard Solution(pH=4.01) | pH=4.012 (25℃) | pH calibration | Used for calibration and slope checking in acidic pH measurement ranges | |
pH Buffer Standard Solution(pH=6.86±0.02) | pH=6.86±0.02 (25℃) | pH calibration | Used for pH electrode calibration of near-neutral samples | |
pH Buffer Standard Solution(pH=6.86) | pH=6.863(25℃) | pH calibration | Used as a neutral calibration point and for routine two-point/three-point calibration | |
pH Buffer Standard Solution(pH=7.00±0.02) | pH=7.00±0.02 (25℃) | pH calibration | Used for neutral calibration, instrument zero-point checking, and routine pH measurement calibration | |
pH Buffer Standard Solution(pH=9.18) | pH=9.184 (25℃) | pH calibration | Used for pH electrode calibration and slope checking in alkaline ranges | |
pH Buffer Standard Solution(pH=10.00±0.02) | pH=10.00±0.02 (25℃) | pH calibration | Used for strongly alkaline samples or high-pH range measurement calibration | |
Electrode Preserving Solution | BioReagent | pH electrode storage | Used for glass electrode membrane hydration, reference junction stability, and routine electrode storage | |
Electrode Soaking Solution |
| pH/ORP electrode maintenance | Used for pH/ORP combination electrode soaking, response recovery, and routine maintenance | |
pH/ORP Cleaning Solution |
| pH/ORP electrode cleaning | Used to remove general contamination and improve pH or ORP electrode response speed and stability | |
pH/ORP Protein Cleaning Solution |
| Protein contamination cleaning | Used to treat liquid junction blockage or delayed electrode response caused by protein-containing samples | |
ORP Standard Solution |
| ORP calibration/checking | Used for oxidation-reduction potential electrode response checking and potential shift assessment | |
Aqueous electrolytic conductivity-KCl | 1000μS/cm(25℃)in H2O,Uncertainty:0.25% | Conductivity calibration | Used for calibration and quality control of conductivity electrodes in low-to-medium conductivity ranges | |
Aqueous electrolytic conductivity-KCl | 147.4μs/cm(25°C) | Conductivity calibration | Used for calibration before low-conductivity sample measurement | |
Potassium chloride | 1410μs/cm(25℃) | Conductivity calibration | Used for conductivity calibration of routine water samples, electrolyte solutions, and laboratory buffers | |
Electrolyte conductivity reference material |
| Conductivity calibration | Used for conductivity measurement standardization and instrument performance validation | |
CELS Counter Electrode Solution |
| Electrochemical supporting solution | Used for counter electrode solution preparation or maintenance in specific electrochemical electrode systems | |
TISAB I solution |
| Fluoride ion detection | Used for ionic strength adjustment and pH control in fluoride ion-selective electrode detection | |
TISAB III solution |
| Fluoride ion detection | Used for fluoride ion-selective electrode analysis to reduce ionic strength differences and complexation interference | |
TISAB IV solution | Skip to the end of the images gallery | Fluoride ion detection | Used for pH control, ionic strength adjustment, and interference control in fluoride determination | |
Fluoride Ion Selective Electrode Solutions |
| Fluoride ion-selective electrode | Used as a supporting solution for fluoride ion-selective electrode detection systems | |
Fluoride Ion Selective Electrode Solutions | 0.1M Standard | Fluoride standard solution | Used for establishing standard curves with fluoride ion-selective electrodes | |
Fluoride Ion Selective Electrode Solutions | 1000ppm Standard | Fluoride standard solution | Used for fluoride detection calibration, quality control, and method validation | |
Fluoride Ion Selective Electrode Solutions | Fill Solution | Fluoride electrode maintenance | Used for internal filling and stable response of fluoride ion-selective electrodes | |
Chloride Ion Selective Electrode Solutions | ISA | Chloride ion detection | Used to equalize ionic strength in chloride ion-selective electrode detection | |
Chloride Ion Selective Electrode Solutions | 0.1M Standard | Chloride standard solution | Used for establishing standard curves with chloride ion electrodes | |
Chloride Ion Selective Electrode Solutions | 1000ppm Standard | Chloride standard solution | Used for chloride detection calibration and quality control | |
Chloride Ion Selective Electrode Solutions | Fill Solution | Chloride electrode maintenance | Used for filling and maintenance of chloride ion-selective electrodes | |
Sodium Ion Selective Electrode Solutions | ISA | Sodium ion detection | Used to control ionic strength in sodium ion-selective electrode detection | |
Sodium Ion Selective Electrode Solutions | 0.1M Standard | Sodium standard solution | Used for establishing standard curves with sodium ion electrodes | |
Sodium Ion Selective Electrode Solutions | 1000ppm Standard | Sodium standard solution | Used for sodium detection calibration and quality control | |
Sodium Ion Selective Electrode Solutions | Fill Solution | Sodium electrode maintenance | Used for filling and response stabilization of sodium ion-selective electrodes | |
Potassium Ion Selective Electrode Solutions | ISA | Potassium ion detection | Used to control ionic strength in potassium ion-selective electrode detection | |
Potassium Ion Selective Electrode Solutions | 0.1M Standard | Potassium standard solution | Used for establishing standard curves with potassium ion electrodes | |
Potassium Ion Selective Electrode Solutions | 1000ppm Standard | Potassium standard solution | Used for potassium detection calibration and quality control | |
Potassium Ion Selective Electrode Solutions | Fill Solution | Potassium electrode maintenance | Used for filling and maintenance of potassium ion-selective electrodes | |
Calcium Ion Selective Electrode Solutions | Fill Solution | Calcium electrode maintenance | Used for internal filling of calcium ion-selective electrodes | |
Calcium Ion Selective Electrode Solutions | 0.1M Standard | Calcium standard solution | Used for establishing standard curves with calcium ion electrodes | |
Calcium Ion Selective Electrode Solutions | 1000ppm Standard | Calcium standard solution | Used for calcium detection calibration and quality control | |
Calcium Ion Selective Electrode Solutions | ISA | Calcium ion detection | Used to equalize ionic strength and improve response stability in calcium ion-selective electrode detection | |
Ammonia Ion Selective Electrode Solutions | ISA | Ammonia ion detection | Used to control ionic strength in ammonia ion-selective electrode detection | |
Ammonia Ion Selective Electrode Solutions | 0.1M Standard | Ammonia standard solution | Used for establishing standard curves with ammonia ion electrodes | |
Ammonia Ion Selective Electrode Solutions | Fill Solution | Ammonia electrode maintenance | Used for filling and maintenance of ammonia ion-selective electrodes | |
Ammonium Ion Selective Electrode Solutions | ISA | Ammonium ion detection | Used to equalize ionic strength in ammonium ion-selective electrode detection | |
Ammonium Ion Selective Electrode Solutions | 0.1M Standard | Ammonium standard solution | Used for establishing standard curves with ammonium ion electrodes | |
Ammonium Ion Selective Electrode Solutions | 1000ppm Standard | Ammonium standard solution | Used for ammonium ion detection calibration and quality control | |
Ammonium Ion Selective Electrode Solutions | Fill Solution | Ammonium electrode maintenance | Used for filling and maintenance of ammonium ion-selective electrodes | |
Nitrate Ion Selective Electrode Solutions | ISA | Nitrate detection | Used to control ionic strength in nitrate ion-selective electrode detection | |
Nitrate Ion Selective Electrode Solutions | 0.1M Standard | Nitrate standard solution | Used for establishing standard curves with nitrate ion electrodes | |
Nitrate Ion Selective Electrode Solutions | 1000ppm Standard | Nitrate standard solution | Used for nitrate detection calibration and quality control | |
Nitrate Ion Selective Electrode Solutions | Fill Solution | Nitrate electrode maintenance | Used for filling and maintenance of nitrate ion-selective electrodes | |
Carbon Dioxide (Carbonate) Ion Selective Electrode Solutions | ISA | Carbonate/carbon dioxide detection | Used to control ionic strength in carbonate or carbon dioxide ion-selective electrode detection | |
Carbon Dioxide (Carbonate) Ion Selective Electrode Solutions | 0.1M Standard | Carbonate/carbon dioxide standard solution | Used for establishing standard curves with carbonate or carbon dioxide electrodes | |
Carbon Dioxide (Carbonate) Ion Selective Electrode Solutions | 1000ppm Standard | Carbonate/carbon dioxide standard solution | Used for carbonate or carbon dioxide detection calibration and quality control | |
Carbon Dioxide (Carbonate) Ion Selective Electrode Solutions | Fill Solution | Carbonate/carbon dioxide electrode maintenance | Used for filling and maintenance of carbon dioxide or carbonate ion-selective electrodes | |
Bromide Ion Selective Electrode Solutions | ISA | Bromide ion detection | Used to control ionic strength in bromide ion-selective electrode detection | |
Bromide Ion Selective Electrode Solutions | 0.1M Standard | Bromide standard solution | Used for establishing standard curves with bromide ion electrodes | |
Bromide Ion Selective Electrode Solutions | 1000ppm Standard | Bromide standard solution | Used for bromide detection calibration and quality control | |
Bromide Ion Selective Electrode Solutions | Fill Solution | Bromide electrode maintenance | Used for filling and maintenance of bromide ion-selective electrodes | |
Iodide Ion Selective Electrode Solutions | ISA | Iodide ion detection | Used to control ionic strength in iodide ion-selective electrode detection | |
Iodide Ion Selective Electrode Solutions | 0.1M Standard | Iodide standard solution | Used for establishing standard curves with iodide ion electrodes | |
Iodide Ion Selective Electrode Solutions | 1000ppm Standard | Iodide standard solution | Used for iodide detection calibration and quality control | |
Iodide Ion Selective Electrode Solutions | Fill Solution | Iodide electrode maintenance | Used for filling and maintenance of iodide ion-selective electrodes | |
Lead Ion Selective Electrode Solutions | ISA | Lead ion detection | Used to control ionic strength in lead ion-selective electrode detection | |
Lead Ion Selective Electrode Solutions | 0.1M Standard | Lead standard solution | Used for establishing standard curves with lead ion electrodes | |
Lead Ion Selective Electrode Solutions | 1000ppm Standard | Lead standard solution | Used for lead ion detection calibration and quality control | |
Lead Ion Selective Electrode Solutions | Fill Solution | Lead electrode maintenance | Used for filling and maintenance of lead ion-selective electrodes | |
Cupric Ion Selective Electrode Solutions | ISA | Copper ion detection | Used to control ionic strength in copper ion-selective electrode detection | |
Cupric Ion Selective Electrode Solutions | 0.1M Standard | Copper standard solution | Used for establishing standard curves with copper ion electrodes | |
Cupric Ion Selective Electrode Solutions | 1000ppm Standard | Copper standard solution | Used for copper ion detection calibration and quality control | |
Cupric Ion Selective Electrode Solutions | Fill Solution | Copper electrode maintenance | Used for filling and maintenance of copper ion-selective electrodes | |
Silver Ion Selective Electrode Solutions | ISA | Silver ion detection | Used to control ionic strength in silver ion-selective electrode detection | |
Silver Ion Selective Electrode Solutions | 0.1M Standard | Silver standard solution | Used for establishing standard curves with silver ion electrodes | |
Silver Ion Selective Electrode Solutions | 1000ppm Standard | Silver standard solution | Used for silver ion detection calibration and quality control | |
Silver Ion Selective Electrode Solutions | Fill Solution | Silver electrode maintenance | Used for filling and maintenance of silver ion-selective electrodes | |
Cadmium Ion Selective Electrode Solutions | ISA | Cadmium ion detection | Used to control ionic strength in cadmium ion-selective electrode detection | |
Cadmium Ion Selective Electrode Solutions | 0.1M Standard | Cadmium standard solution | Used for establishing standard curves with cadmium ion electrodes | |
Cadmium Ion Selective Electrode Solutions | 1000ppm Standard | Cadmium standard solution | Used for cadmium ion detection calibration and quality control | |
Cadmium Ion Selective Electrode Solutions | Fill Solution | Cadmium electrode maintenance | Used for filling and maintenance of cadmium ion-selective electrodes |
9 Frequently Asked Questions
9.1 Can pure water be used instead of pH electrode storage solution?
It is not recommended. Pure water has low ionic strength, and long-term storage in pure water can disrupt the ionic balance of the glass membrane and reference system, leading to delayed response and reading drift. Pure water is suitable only for rinsing electrodes, not for long-term soaking or storage.
9.2 Can pH standard buffer be used as an electrode protection solution?
It is not recommended. pH standard buffers are used for calibration, while electrode protection solutions are used for storage and maintaining membrane hydration. Their functions are different. Long-term storage of electrodes in standard buffers may cause contamination, crystallization, or reference system instability.
9.3 Why should pH electrodes be calibrated using two or three points?
Two-point or three-point calibration can check both zero point and slope. Single-point calibration cannot determine whether the electrode maintains a normal response in acidic or alkaline ranges.
9.4 Is ORP standard solution used to calibrate the sample potential?
No. ORP standard solution is mainly used to check electrode response and potential shift. It is not used to adjust the redox state of the sample. ORP measurement depends more strongly on electrode surface condition and the sample system itself.
9.5 Why do ion-selective electrodes require ionic strength adjusters?
Ion-selective electrodes respond to ion activity rather than simple concentration. Changes in ionic strength affect activity coefficients, making standards and samples incomparable. Ionic strength adjusters improve response stability and linearity.
9.6 Why is TISAB commonly used in fluoride ion detection?
TISAB controls pH, equalizes ionic strength, and reduces the effect of metal ion complexation on fluoride detection. Standards and samples should receive the same addition ratio to ensure consistent response conditions.
9.7 Can standard solutions, filling solutions, and ionic strength adjusters be used interchangeably?
No. Standard solutions are used for calibration, filling solutions maintain the internal electrode environment, and ionic strength adjusters standardize conditions between samples and standards. Their functions are different, and interchange may cause abnormal response or reduced electrode performance.
Electrode solution selection should be based on electrode type, measurement target, and sample matrix. pH measurement focuses on standard buffers, protection solutions, and cleaning solutions; ORP measurement focuses on standard solution checks and electrode surface maintenance; conductivity measurement requires standards close to the sample range; and ion-selective electrodes require matched standard solutions, filling solutions, and ionic strength adjusters.
For more related articles, please see below:
[1] The Practical Guide to “For Ion-Selective Electrodes” Reagents
[3] Determination of trace fluorine in water by fluoride ion selective electrode experiment
