| Electrochemical | Usually designed for low-level ambient monitoring, commonly from a few parts per billion (ppb) to approximately 1,000 ppb. | Often within approximately ±10% of reading under controlled conditions; actual performance depends on temperature, humidity, and gas exposure. | Two-point calibration using zero air and a certified ozone span concentration. A reference photometer may be used for higher accuracy. | Every 3–6 months for critical monitoring; every 6–12 months for stable, non-critical environments. | Replace the sensing element when its response becomes slow or the baseline drifts. Keep the inlet clean and protect it from condensation and aerosols. | Sensor output can gradually decline because of electrode aging, chemical exposure, and changes in electrolyte condition. Cross-sensitivity to other oxidizing gases should be evaluated. | Indoor air quality, occupational exposure screening, ventilation control, and portable instruments. | Choose this technology when low power consumption, compact size, and moderate cost are more important than laboratory-level precision. |
| Metal-Oxide Semiconductor | Commonly used for low-to-medium ozone concentrations, with ranges varying from approximately 10 ppb to several parts per million (ppm). | Typically less precise than reference-grade methods; accuracy may vary significantly with humidity, temperature, and interfering gases. | Multi-point calibration against certified ozone concentrations under the intended temperature and humidity conditions. | Every 1–3 months when exposed to changing environmental conditions; otherwise at least every 6 months. | Requires stable heater operation, clean airflow, and periodic inspection for contamination. Allow sufficient warm-up time before measurement. | Baseline drift and sensitivity changes may occur over time. Humidity compensation and periodic recalibration are important for dependable results. | Trend monitoring, process alarms, general environmental screening, and applications where exact concentration measurement is not required. | Use only when the application can tolerate greater measurement uncertainty and the sensor can be calibrated in its actual operating environment. |
| Ultraviolet Absorption Photometer | Commonly covers low ppb levels through high ppm concentrations, depending on the optical path and instrument configuration. | Often approximately ±1–2% of reading or better when properly maintained and calibrated. | Zero calibration with ozone-free air and span verification or calibration using a traceable ozone standard or reference analyzer. | Zero and span checks are commonly performed daily or weekly in critical systems; formal calibration is often scheduled every 6–12 months. | Clean the optical cell, replace or inspect filters, verify pump and flow rate, and prevent dust, moisture, and particles from entering the sample path. | Generally strong long-term stability, but lamp aging, optical contamination, flow changes, and pressure or temperature effects can introduce drift. | Regulatory monitoring, research laboratories, ozone generator control, water-treatment process monitoring, and high-accuracy systems. | Select this method when traceability, repeatability, and long-term measurement confidence are more important than minimum size or cost. |
| Chemiluminescence | Can provide high sensitivity from very low ppb concentrations to ranges suitable for specialized monitoring systems. | Very high sensitivity is possible, but overall accuracy depends on reagent condition, flow control, and calibration quality. | Zero and span calibration using certified ozone standards, with careful control of reagent and sample-flow conditions. | Frequent zero checks and regular span checks; full calibration intervals are commonly determined by the laboratory quality system. | Requires reagent management, controlled sample flow, leak checks, and regular cleaning of the reaction chamber and sample lines. | Long-term performance can be affected by reagent aging, contamination, pump wear, and changes in reaction efficiency. | Research laboratories, atmospheric studies, and specialized low-concentration measurement applications. | Choose this technology only when very high sensitivity justifies the added operating complexity and maintenance requirements. |
| Colorimetric or Indicator-Tube Method | Available in application-specific ranges, often from low ppb or ppm levels to several hundred ppm. | Usually lower than continuous electronic analyzers; results are affected by tube age, sampling technique, temperature, and reading method. | Use unopened, in-date tubes or validated test media. Verify sampling pumps and follow the specified measurement procedure. | Check pump performance before use; replace test media according to its expiration date rather than a fixed electronic calibration interval. | Store tubes correctly, inspect packaging, perform leak checks, and follow the specified sample volume and reaction time. | Single-use media do not suffer from electronic drift, but expired or improperly stored reagents can produce unreliable results. | Occasional field checks, emergency response, maintenance verification, and backup measurements. | Use this method for infrequent testing or as a verification tool, not for unattended continuous monitoring. |
| Reference-Grade Analyzer | Configured for the concentration range required by regulatory, laboratory, or process-control protocols. | Designed for high repeatability and traceability; the achievable uncertainty depends on the complete measurement system and quality procedures. | Documented zero and span procedures using traceable standards, controlled flow, and comparison with a qualified reference method. | Daily operational checks, scheduled performance audits, and formal calibration according to regulatory or laboratory requirements. | Requires documented preventive maintenance, flow verification, inlet-filter replacement, leak testing, and service records. | Best long-term stability is achieved through environmental control, trend analysis, preventive maintenance, and documented recalibration. | Compliance monitoring, validated manufacturing processes, calibration laboratories, and critical ozone-generation systems. | Choose this category when measurement results must be defensible, traceable, and suitable for audits or regulated decisions. |