HCN Sensor Selection

Hydrogen Cyanide Sensors

Select HCN sensors for personal safety, firefighting, emergency response, petrochemical plants, mining, electroplating, pharmaceutical production and fixed industrial monitoring. Compare electrochemical range, response time, bias requirements, cross-sensitivity and exposure-life limits.

HCNSensor Selection
Fire & rescue
Industrial safety
Mining
Process hazards
Personal Range0–50 ppm class Industrial Range0–100 ppm class TechnologyElectrochemical Key ChecksH₂S · SO₂ · Bias · Exposure history
Engineering note: HCN sensors can show large responses to other toxic gases, especially H₂S on some cell chemistries. Cross-sensitivity and AFE bias should be checked before range or package size.
Safety context

HCN measurement needs useful resolution well below full scale

Hydrogen cyanide is an acute toxic hazard. NIOSH lists a short-term recommended exposure limit of 4.7 ppm and an IDLH value of 50 ppm. These values are exposure references rather than universal gas-detector alarm setpoints, but they show why a 0–100 ppm sensor still needs reliable low-ppm behavior.

4.7 ppmNIOSH REL

Short-term exposure reference with a skin notation.

50 ppmNIOSH IDLH

Immediately Dangerous to Life or Health reference value.

0–50 / 100 ppmCommon sensor class

Typical electrochemical ranges for personal and industrial HCN instruments.

Quick selection

Choose the HCN sensor around the hazard and instrument format

HCN is usually measured with amperometric electrochemical cells. The most important selection differences are mechanical format, T90, bias, humidity behavior, cross-sensitivity and whether the sensor will see gas only during incidents or continuously.

Wearable / personal monitor

0–50 ppm

Miniature cells prioritize fast alarms and small package height for clip-on instruments.

  • HCN-D4 / H4 class
  • Fire, mining and rescue wearables
Portable industrial safety

0–100 ppm

Standard A-Series or 20 mm cells fit handheld toxic-gas analyzers and multi-gas platforms.

  • Petrochemical and chemical plants
  • Confined-space checking
Fixed industrial detection

0–100 ppm

Larger electrolyte volume and environmental stability can help in humid or outdoor fixed installations.

  • High-humidity plant areas
  • Continuous fixed transmitters
Firefighter / emergency response

0–50 / 100 ppm

Fast HCN should be combined with other fire gases rather than treated as a stand-alone combustion indicator.

  • HCN + CO
  • Fireground / overhaul
Mining / electroplating / cyanide process

0–100 ppm

HCN can be associated with cyanide chemistry and acidic conditions; gas matrix and H₂S interference need explicit testing.

  • Fixed or portable safety
  • Headspace / local release monitoring
Wastewater / headspace

Gas-phase HCN

Use a gas sensor only when the target is HCN in air or headspace. Total cyanide in water is a different analytical task.

  • Short gas path
  • High humidity / condensation control
Electrochemical technology

HCN cells are not electrically interchangeable

Hydrogen cyanide sensors use electrochemical reactions at a working electrode to produce a current related to HCN concentration. The mechanical principle is familiar, but the required electrode potential and analog front end can vary between products.

Working electrode

HCN reacts at the sensing electrode and produces the concentration-related current.

Sensitivity is specified in nA/ppm or µA/ppm.

Reference electrode

Controls working-electrode potential and makes the specified bias condition possible.

Bias must follow the exact datasheet.

Gas diffusion path

Membrane, cap and enclosure geometry determine how quickly HCN reaches the catalyst.

Finished T90 is usually slower than bare-cell T90.

AFE / potentiostat

Converts low sensor current into a stable voltage or digital concentration.

Zero drift and bias stability affect low-ppm alarms.
Bias requirement example: Winsen ME3-HCN specifies +300 mV bias, while Honeywell 7HCN specifies no bias. A PCB designed for one cell should not be assumed compatible with another 0–100 ppm HCN sensor.
OEM shortlist

HCN sensors for wearable, portable and fixed safety systems

The most useful comparison is not simply 50 ppm versus 100 ppm. Package size, T90, bias, environmental behavior and interference profile often determine which HCN cell fits the instrument.

OEM needManufacturerModelTypePublished rangeKey engineering pointOfficial source
20 mm industrial HCNWinsenME3-HCN3-electrode EC0–100 ppm
max 150 ppm
0.2 ppm resolution, T90 <120 s, +300 mV bias and 2-year anticipated life.Official ↗
Miniature wearableAlphasenseHCN-D4Miniature EC0–50 ppmT90 <50 s, D-Series footprint and 30–50 nA/ppm sensitivity for clip-on personal monitors.Official ↗
Miniature wearable alternativeAlphasenseHCN-H4Miniature EC0–50 ppmT90 <50 s, H-Series format for compact firefighting, mining and industrial wearables.Official ↗
Portable / general safetyAlphasenseHCN-A1A-Series EC0–100 ppmT90 <70 s, 45–85 nA/ppm sensitivity and application positioning for firefighting, mining and industrial safety.Official ↗
Fixed / high-humidityAlphasenseHCN-B1B-Series EC0–100 ppmT90 <120 s, larger electrolyte volume and fixed/high-humidity positioning.Official ↗
Life-safety 7-Series routeHoneywell City Technology7HCN3-electrode EC0–100 ppm0.5 ppm resolution, T90 <200 s, no bias required and 2-year expected life in air.Datasheet ↗
Fast compact HCNMembraporHCN/C-1003-electrode EC0–100 ppm
max 200 ppm
<0.3 ppm resolution, T90 <20 s, no bias recommended and 3–5 year application-based life.Datasheet ↗

Published values are component specifications. Validate HCN response, interferents, bias, temperature and complete detector performance before production.

Application comparison

HCN sensor priorities change with the exposure scenario

Wearable and portable personal safety

Personal instruments need fast response in a small package, but the alarm channel also has to remain stable near a few ppm.

ProductRangeT90Engineering point
Alphasense HCN-D40–50 ppm<50 sMiniature D-Series for slim clip-on instruments.
Alphasense HCN-H40–50 ppm<50 sMiniature H-Series route for wearable multi-gas platforms.
Membrapor HCN/C-1000–100 ppm<20 sVery fast compact cell where 100 ppm full-scale coverage is preferred.

Fixed industrial and high-humidity monitoring

Fixed transmitters often trade package size for electrolyte volume, environmental stability and longer service intervals.

RouteRangeStrengthWatch point
Alphasense HCN-B10–100 ppmB-Series fixed / high-humidity positioning.Confirm interferents and response through the final enclosure.
Winsen ME3-HCN0–100 ppmCompact 20 mm industrial raw cell.Requires +300 mV bias and ≥48 h aging/stabilization before use per manual.
Honeywell 7HCN0–100 ppmNo-bias life-safety architecture.Not recommended for repeated or continuous HCN exposure.

Fire and emergency response

HCN is one of several toxic combustion products that can matter in fireground and post-fire environments. Portable multi-gas instruments should treat HCN as a dedicated channel rather than infer it from CO.

Measurement needRecommended design approachReason
Firefighter wearableMiniature 0–50 ppm HCN + CO + O₂ / other required gasesCombines HCN alarm coverage with other immediately relevant fire hazards.
Post-fire overhaulPortable pump or diffusion multi-gas instrumentChecks local pockets before respiratory protection is relaxed.
Hot smoke / remote samplingCondition and validate the sample before the HCN cellElectrochemical cell limits are not the same as raw smoke temperature and particulate conditions.
Fireground monitoring

HCN and CO should be measured as separate fire-gas channels

Combustion of nitrogen-containing materials can generate hydrogen cyanide. CO is also common in fires, but the concentrations do not follow a fixed ratio, so one gas should not be used as a universal surrogate for the other.

Portable / wearable design

  • Use a dedicated HCN electrochemical cell.
  • Combine with CO and the other gases required by the mission.
  • Prioritize response time and low-ppm alarm stability.
  • Check bump response before use according to the instrument procedure.

Smoke-laden sampling

  • Protect the cell from soot and liquid contamination.
  • Do not expose the electrochemical sensor directly to temperatures outside its rating.
  • Account for pump and tubing delay in remote sampling.
  • Validate the complete gas path with HCN target gas.
HCN cross-sensitivity

H₂S can produce a very large false HCN reading

Cross-sensitivity is one of the most important HCN selection factors. The direction and magnitude vary by chemistry, so use the exact sensor's interference table rather than a generic HCN correction.

HCN sensorInterfering gasTest concentrationPublished HCN-equivalent responseEngineering implication
Winsen ME3-HCNH₂S20 ppm100 ppmStrong positive false HCN response; mixed H₂S/HCN sites need a different strategy or validated compensation.
Winsen ME3-HCNCO300 ppm20 ppmRelevant in fire and combustion environments.
Winsen ME3-HCNC₂H₄100 ppm30 ppmReview hydrocarbon/process gas composition.
Winsen ME3-HCNSO₂5 ppm<8 ppmSulfur-gas mixtures can create material error at low HCN alarm levels.
Membrapor HCN/C-100H₂S15 ppm~25 ppmPositive HCN bias even at modest H₂S concentration.
Membrapor HCN/C-100SO₂20 ppm~38 ppmLarge positive response; evaluate sulfur processes carefully.
Membrapor HCN/C-100NO₂5 ppm~−12 ppmNegative interference can suppress a real HCN reading.
Honeywell 7HCN gives an especially strong warning: its datasheet states that high H₂S cross-sensitivity makes the cell unsuitable for atmospheres containing hydrogen sulfide. This is why HCN sensor selection must include the expected gas matrix, not just the target range.
AFE & bias

Bias voltage changes the HCN electronics design

HCN cells from different manufacturers can use different electrode potentials. The analog front end must keep the working/reference relationship at the specified voltage during operation and, where required, during storage or startup.

Winsen ME3-HCN

  • Published bias: +300 mV.
  • Recommended load resistance: 10 Ω.
  • Manual calls for at least 48 hours aging before use.
  • PCB firmware should allow stabilization before trusting alarms.

Honeywell 7HCN / Membrapor HCN/C-100

  • Honeywell 7HCN: bias not required.
  • Membrapor HCN/C-100: bias not recommended.
  • The AFE can therefore differ materially from a +300 mV design.
  • Do not treat common range and pin count as electrical compatibility.
Exposure & sensor life

HCN life-safety cells may not tolerate continuous target gas

Published operating life is not the same as allowable cumulative HCN exposure. A sensor can age normally in clean air yet drift quickly when used as a continuous process monitor.

Occasional safety exposure

This is the intended duty for many personal and fixed life-safety HCN cells.

  • Gas appears mainly during a leak, fire or test.
  • Periodic bump and calibration checks confirm recovery.

Repeated release events

Repeated target-gas doses can change output and shorten replacement intervals.

  • Track exposure history where possible.
  • Recheck response after a significant HCN event.

Continuous process HCN

Use a sensor or analyzer specifically validated for continuous exposure.

  • Honeywell 7HCN explicitly warns against repeated or continuous exposure.
  • Do not extend a life-in-air claim to a constant HCN process stream.
Gas vs liquid cyanide

HCN gas sensors do not measure total cyanide in water

Mining, electroplating and wastewater projects can involve both gaseous hydrogen cyanide and dissolved cyanide chemistry. The measurement method depends on which phase and chemical form the project needs to quantify.

MeasurementTargetTypical unitInstrument routeExample use
HCN gasHydrogen cyanide in air / headspaceppmElectrochemical gas sensor or detectorWorker safety, process release, tank / wastewater headspace
Cyanide in waterDissolved / free / total cyanide depending methodmg/LWater-analysis method or dedicated liquid analyzerMining water, plating wastewater, process chemistry
Sampling & condensation

Validate HCN through the complete enclosure or pumped sample path

Humidity, condensation, particles and sample-line delay can make a detector respond differently from the bare sensor. This becomes especially important in fire, wastewater headspace and pumped portable instruments.

1

Choose the point

Sample the breathing zone, process release point or representative headspace.

2

Control particles

Protect the diffusion barrier without excessively slowing HCN transport.

3

Avoid condensation

Keep liquid water away from the sensing inlet and sample line.

4

Measure transport delay

Pumps, tubing and filters add response time beyond the cell T90.

5

Test with HCN

Verify the assembled instrument with target gas at the final inlet.

Winsen HCN option

ME3-HCN engineering profile

Winsen's current HCN gas-sensor listing centers on ME3-HCN, a 20 mm-class raw electrochemical cell for industrial and environmental HCN detection.

ParameterME3-HCN published valueDesign implication
Measurement range0–100 ppmSuitable for general personal / industrial HCN range architecture.
Maximum detecting concentration150 ppmDo not interpret max concentration as the normal calibrated measuring range.
Sensitivity0.1 ± 0.02 µA/ppmAFE gain must support low-ppm resolution without saturation.
Resolution0.2 ppmUseful for low-ppm industrial safety when complete-system noise is controlled.
T90<120 sFinished detector response will also include enclosure / sample transport.
Bias voltage+300 mVRequires the correct potentiostat / bias architecture.
Anticipated life2 yearsLife depends on storage, environment and exposure history.
Key published interference20 ppm H₂S → 100 ppm HCN equivalentDo not use the cell in an H₂S-rich application without a validated mitigation strategy.
Additional manufacturers

Other hydrogen cyanide sensor product ranges

These manufacturers publish HCN sensors for personal monitors, fixed systems, fire and rescue, mining and industrial safety.

Alphasense

A-, B-, D- and H-Series HCN cells plus IST versions for wearable, portable and fixed instruments.

HCN range ↗

Honeywell City Technology

7HCN 0–100 ppm life-safety electrochemical sensor with no bias requirement.

7HCN datasheet ↗

Membrapor

HCN/C-100 compact electrochemical sensor with fast response and published cross-sensitivity data.

HCN/C-100 ↗

Submit an HCN sensor

Manufacturers can provide an official product page and current datasheet for inclusion.

Submit product →
Calibration & maintenance

HCN calibration should use target gas, not an interferent

Because cross-sensitivity varies so much between HCN cell chemistries, calibration with CO, H₂S or another surrogate gas can create large error. Use the instrument's approved HCN calibration method.

Bias stabilization

Allow the required bias / aging time before zeroing or calibration. This is especially important after power loss or sensor replacement.

Bump check

Confirms that HCN reaches the sensor and the measurement / alarm chain responds. Follow the finished detector procedure.

Post-exposure check

After a high HCN event or repeated gas exposure, confirm zero, span and response before returning the instrument to normal safety service.

FAQ

Hydrogen cyanide sensor questions

What HCN sensor range is common for personal and industrial safety?

Many personal and industrial HCN electrochemical sensors use 0–50 ppm or 0–100 ppm measurement ranges. The useful range should preserve low-ppm alarm performance while covering the credible release concentration for the application.

Why is low-ppm performance important for HCN?

Hydrogen cyanide is highly toxic. NIOSH lists a 4.7 ppm short-term recommended exposure limit and a 50 ppm IDLH value. These are exposure references, not universal detector setpoints, but they show why resolution and response near the low-ppm region matter.

Why is H₂S cross-sensitivity a major issue for HCN sensors?

Some HCN electrochemical cells respond very strongly to hydrogen sulfide. For example, manufacturer data for several commercial HCN sensors show large positive H2S responses. A sensor that works in a clean HCN test can therefore over-read badly in mixed sulfur-gas environments.

Do all HCN electrochemical sensors require the same bias voltage?

No. Winsen ME3-HCN specifies a +300 mV bias, while Honeywell 7HCN specifies no bias. The analog front end must follow the exact cell datasheet; HCN sensors should not be treated as electrically interchangeable.

Why is HCN monitored in firefighting and post-fire overhaul?

Combustion of nitrogen-containing materials can produce hydrogen cyanide. Portable multi-gas instruments can monitor HCN together with CO and other hazards during fireground assessment, overhaul and confined-space checking.

Can an HCN sensor be used continuously in a process stream?

Only if the sensor is designed and validated for that exposure profile. Some life-safety HCN cells are intended for occasional gas exposure and can drift or age rapidly under repeated or continuous HCN exposure.

Does an HCN gas sensor measure cyanide in wastewater?

No. An HCN gas sensor measures gaseous hydrogen cyanide in air or headspace. Dissolved or total cyanide in water requires an appropriate water-analysis method or liquid-phase instrument.

How should HCN sensors be calibrated?

Use certified HCN calibration gas and the complete detector gas path. Follow the sensor or instrument instructions for bias stabilization, flow rate, temperature and bump testing, and use target gas rather than an interfering gas as a calibration surrogate.

Engineering reference

Final checks before design freeze

Validate the finished HCN detector in the gas mixture and duty cycle expected in service. Low-ppm response, cross-sensitivity and cumulative target-gas exposure can matter more than nominal full scale.

  • Confirm 0–50 ppm versus 0–100 ppm range around the actual safety task.
  • Review H₂S, SO₂, CO, ethylene and oxidant cross-sensitivities for the exact cell.
  • Match the AFE to the specified HCN bias voltage and sensor polarity.
  • Add enclosure, filter, pump and tubing delay to the bare-sensor T90.
  • Do not extend a life-in-air claim to repeated or continuous HCN exposure without validation.
  • Use a dedicated HCN channel in fire / rescue instruments rather than infer HCN from CO.
  • Separate gaseous HCN monitoring from liquid cyanide analysis.

Need an HCN sensor for an OEM project?

Send the target range, personal / fixed / fire / process application, expected interferents, humidity, response requirement, bias / interface constraints and exposure duty cycle. Manufacturers can also submit HCN sensor models with an official product page and current datasheet.

Submit HCN Sensor / Project

Specifications and product availability can change. Confirm the latest manufacturer datasheet before engineering, compliance or purchasing decisions.