🔬 Metals in water — ICP-OES

Physicochemistry PN-EN ISO 11885

Multi-element analysis of over 30 elements in water using ICP-OES with argon plasma at 6000–10000 K. Fast, simultaneous analysis.

Overview

ICP-OES (Inductively Coupled Plasma – Optical Emission Spectrometry) is an advanced spectrometric technique enabling simultaneous determination of over 30 elements in a single measurement. Standard PN-EN ISO 11885:2009 specifies the method for determining among others: Al, As, Ba, Be, Bi, B, Ca, Cd, Co, Cr, Cu, Fe, Ga, In, K, Li, Mg, Mn, Mo, Na, Ni, P, Pb, S, Se, Si, Ag, Sr, Sn, Ti, V, W, Zn, Zr in drinking water, surface water, groundwater, and wastewater.

ICP-OES replaces or complements AAS where multi-element analysis, higher sensitivity, or greater throughput is required. Simultaneous determination of many elements in one measurement cycle drastically shortens analysis time and reduces sample consumption.

This technique is widely used in environmental laboratories, water treatment plants, chemical and pharmaceutical industries. Investment cost is higher than AAS, but cost per element is lower when many parameters are analyzed.

Method principle

The sample in solution form is pumped to a nebulizer where it is converted to an aerosol (mist), then introduced into a quartz torch. A radio frequency (RF) generator (27 or 40 MHz) creates an alternating electromagnetic field in an induction coil that ionizes argon creating plasma at 6000–10000 K.

At such high temperature, the sample undergoes evaporation, atomization, and excitation. Excited atoms and ions emit electromagnetic radiation at wavelengths characteristic of individual elements. An optical detector (CCD or PMT) measures emission intensity, which is proportional to element concentration in the sample.

ICP-OES can operate in radial (side-on plasma observation) or axial (end-on) configuration — axial configuration provides higher sensitivity, while radial provides fewer matrix effects.

Applications

Key parameters

ParameterValue
Number of determined elements> 30 simultaneously
Detection limits1–50 µg/L (depending on element)
Dynamic range4–6 orders of magnitude
Throughput20–60 samples/h (multi-element)
RepeatabilityRSD < 1–3%
Argon consumption10–20 L/min (cost ~30 000–50 000 PLN/year)

Standard

Standard number
PN-EN ISO 11885:2009
Title (PL)
Jakość wody — Oznaczanie wybranych pierwiastków metodą optycznej spektrometrii emisyjnej z plazmą indukcyjnie sprzężoną (ICP-OES)
Title (EN)
Water quality — Determination of selected elements by inductively coupled plasma optical emission spectrometry (ICP-OES)

Step-by-step procedure

1. Sampling and preservation

Collect sample in PE/PP container. Acidify with HNO₃ to pH < 2 (1 mL concentrated HNO₃ per 100 mL). Transport cold, analysis within 14 days.

⏱ Time: 5 min

2. Sample digestion

For total forms: microwave digestion (HNO₃ or HNO₃+HCl). Program: ramp to 180°C in 15 min, hold 15 min. For dissolved forms: filtration 0.45 µm + acidification.

⏱ Time: 45–60 min • 🌡 Temperature: 180°C

3. Preparation of calibration standards

Prepare min. 5 calibration points from certified standard solutions. Acid matrix identical to samples. Add internal standard (Y or Sc).

⏱ Time: 20 min

4. ICP-OES startup

Turn on chiller, plasma ignition, stabilization 15–30 min. Check Mn 257.610 nm line intensity (plasma performance test). Optimization of observation position.

⏱ Time: 30 min

5. Instrument calibration

Measure calibration standards and blank. Check correlation coefficients (R² > 0.999 for each line). Verify detection limits.

⏱ Time: 15 min

6. Sample measurement

Measure samples with automatic rinsing between measurements (30 s acid rinse, 30 s water). Control standard every 10 samples. Duplicate every 20 samples.

⏱ Time: 2–3 min/sample

7. Results verification

Check recovery from reference material (90–110%). Check instrument drift (control standard ±10% of nominal value). Background and spectral interference correction.

⏱ Time: 10 min

8. Instrument shutdown

Aspirate deionized water for 5 min. Turn off plasma. Turn off gases after 10 min cooling. Turn off chiller.

⏱ Time: 15 min

Required equipment and apparatus

EquipmentExampleIndicative price
ICP-OES spectrometerThermo iCAP PRO, Agilent 5800/5900, PerkinElmer Avio 500, Shimadzu ICPE-9820200 000–600 000 PLN
Sample introduction system (nebulizer + chamber)Meinhard pneumatic nebulizer, cyclonic chamberincluded with spectrometer
AutosamplerThermo ASX-560, Agilent SPS 430 000–80 000 PLN
Argon cylinder (5.0)Argon purity 99.999%, 50 L cylinder300–500 PLN/cylinder
Cooling systemRecirculating chiller (required for RF coil cooling)10 000–25 000 PLN
Microwave digestion systemMilestone Ethos UP, CEM MARS 6, Anton Paar Multiwave100 000–250 000 PLN

Reagents, media and consumables

ReagentCASDetails
Concentrated nitric acid (HNO₃)7697-37-2Suprapur/Ultrapur purity (Merck), for digestion and acidification of samples
Hydrochloric acid (HCl)7647-01-0Suprapur purity, for digestion of samples containing Ag, Sn
Multi-element standard solutionsCertified CRM (e.g., Merck Certipur, Inorganic Ventures), traceability to NIST
Internal standard solutionYttrium (Y) or scandium (Sc) 1–5 mg/L as internal standard for matrix correction
Argon gas 5.07440-37-1Purity 99.999%, consumption ~10–20 L/min. Main operating cost
Ultrapure waterType I (18.2 MΩ·cm), Milli-Q system or equivalent

Health and safety (OHS)

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