Battery Materials Testing

Nickel, Cobalt & Manganese Sulfate Analysis

Sterling Analytical provides nickel, cobalt, and manganese sulfate analysis, quantifying both the precise stoichiometric ratio of these three metals and the trace impurities that affect downstream cathode synthesis. NCM (or NMC) sulfate solutions and crystals are the direct precursor material for nickel-manganese-cobalt cathode production, and unlike many materials where purity is the whole story, NCM sulfate testing is just as much about confirming the metal ratio is exactly right as it is about confirming the material is clean.
The naming convention used throughout this industry — NMC 111, NMC 622, NMC 811 — directly encodes the nickel:manganese:cobalt ratio in the finished cathode, and that ratio is set at the precursor stage through the composition of the metal sulfate solution used in co-precipitation. Get the ratio wrong at the sulfate stage and no amount of downstream processing corrects it; the cathode material that comes out will reflect whatever ratio actually went in, not whatever ratio was intended.
Our laboratory supports precursor manufacturers, cathode material producers, and battery materials buyers who need both dimensions of this testing — accurate ratio confirmation and a complete trace impurity profile — on a material where getting either one wrong has real downstream consequences.
Nickel, Cobalt & Manganese Sulfate Analysis

Matrix & Digestion

Nickel, cobalt, and manganese sulfates are generally straightforward to dissolve compared to some of the more refractory materials in battery supply chain testing, but accuracy at the level NCM precursor qualification demands still requires care in preparation and calibration.

Sterling Analytical’s approach:

For solid sulfate crystals versus liquid precursor solutions, sample preparation is adjusted accordingly, but the underlying analytical approach — accurate quantification of Ni, Co, and Mn alongside a full trace impurity panel — stays consistent across both forms.

Why Stoichiometric Ratio Accuracy Is the Core of This Testing

Most elemental testing in this industry is primarily a purity question: how much of an unwanted element is present. NCM sulfate testing is different, because the relative proportion of three wanted elements is itself the specification.
The Ni:Co:Mn ratio in the precursor sulfate solution determines the ratio in the finished cathode material, since this composition is set during the co-precipitation step that converts the metal sulfate solution into the hydroxide or carbonate precursor that’s eventually lithiated into the final cathode oxide. A precursor solution intended for NMC 811 (high-nickel, roughly 8:1:1 Ni:Mn:Co) that’s actually closer to 7:1.5:1.5 isn’t an impurity problem in the traditional sense — every element present is one that’s supposed to be there — but it’s just as serious a quality failure, because the resulting cathode material won’t match its intended electrochemical performance, energy density, or cost profile.
This is why we report and verify the actual Ni:Co:Mn ratio explicitly, not just individual element concentrations in isolation. A result showing each element “present and accounted for” isn’t useful on its own if the ratio between them has drifted from specification.

Elements & Reporting

Reporting limits depend on the specific element and customer specification, with sodium and potassium in particular often held to very tight tolerances given their impact on finished cathode performance.

Impurity Behavior Specific to This Matrix: Why Some Elements Co-Precipitate and Others Don't

One of the more useful things to understand about NCM precursor impurity behavior is that not all common contaminant elements behave the same way during the precipitation process that converts sulfate solution into precursor hydroxide — and that has direct implications for what testing at the sulfate stage can and can’t predict.
Published research on NCM precursor co-precipitation has shown that elements like calcium, magnesium, zinc, and iron tend to co-precipitate along with the target nickel-cobalt-manganese hydroxide to a significant extent, meaning contamination present in the sulfate solution largely carries through into the precursor and ultimately the finished cathode. Potassium, by contrast, behaves very differently — it tends to remain in solution rather than co-precipitating, meaning potassium contamination in the sulfate feedstock doesn’t necessarily translate into potassium contamination in the finished precursor at the same proportion.
This distinction matters practically: testing the sulfate solution tells you what’s present in the feedstock, but understanding which elements actually carry through the precipitation process helps interpret which contaminants are the real downstream risk versus which ones are likely to be substantially removed during normal processing.

Why the Solution Ratio Isn't Always the Precipitate Ratio

There’s a second, related subtlety worth understanding: the Ni:Co:Mn ratio measured in the sulfate solution and the ratio that actually ends up in the precipitated precursor aren’t always identical, because the three metals don’t precipitate with perfectly equal efficiency under all conditions.
Manganese in particular tends to be more soluble than nickel and cobalt under typical co-precipitation conditions, meaning it can be somewhat under-represented in the precipitate relative to its concentration in the starting solution unless precipitation conditions (particularly pH) are carefully controlled to compensate. This is part of why solution composition testing, while essential, is one input into precursor quality rather than a complete guarantee of finished precursor stoichiometry on its own — a sulfate solution mixed to a perfect target ratio can still yield a precursor with a measurably different ratio if precipitation conditions aren’t well controlled downstream of the sulfate stage.
For clients managing the full process from sulfate solution through precipitation, this is one reason we recommend testing at both stages where practical — sulfate solution composition to confirm feedstock is correctly formulated, and finished precursor composition to confirm the precipitation step actually delivered the intended result.

Common Quality Issues We Identify

Who Uses This Service

Sample Quantity & Packaging

Required sample size: 5–20 grams for solid sulfate material, or 250–500 mL for liquid precursor solution.

Packaging guidelines:

Turnaround Time & Pricing

Standard turnaround: 3–5 business days Rush service: 24–48 hours available
Pricing starts from $150 per sample, depending on element panel and whether anion (chloride/sulfate) testing is included.

What You Receive

Clients receive a detailed Certificate of Analysis (COA) suitable for precursor QC, supplier qualification, and process troubleshooting.

Your COA includes:

All results are supported by CRM-traceable calibration, with duplicates and matrix spikes performed on each analytical batch.

Methods & Standards

Sterling Analytical applies established methods adapted for NCM precursor materials:

Explore related services:

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Frequently Asked Questions

It's used to verify the nickel:cobalt:manganese stoichiometric ratio and trace impurity profile of precursor material used in NMC cathode production, supporting precursor QC, supplier qualification, and process troubleshooting.
Not necessarily. Manganese tends to be more soluble than nickel and cobalt under typical precipitation conditions, meaning the precipitate ratio can differ somewhat from the solution ratio unless precipitation conditions like pH are carefully controlled. Testing at both the solution and finished precursor stages provides a more complete quality picture than testing solution alone.
The ratio set in the precursor sulfate directly determines the composition of the finished cathode material (as reflected in naming like NMC 622 or NMC 811). A ratio that's drifted from specification produces a finished cathode that doesn't match its intended electrochemical performance, even if every individual element is otherwise "pure."
Not equally. Elements like calcium, magnesium, zinc, and iron tend to co-precipitate along with the target metals during processing and largely carry through. Potassium behaves differently and tends to remain in solution rather than co-precipitating, meaning its presence in the sulfate doesn't always translate proportionally into the finished precursor.
Copper contamination is a particular concern in sulfate solutions sourced from recycled battery material (often from black mass processing), since copper from current collectors and other battery components can carry into the recovered metal stream.
5–20 grams for solid material, or 250–500 mL for liquid precursor solution.
Standard turnaround is 3–5 business days, with 24–48 hour rush service available.
Yes. Both are common in current supply chains, and we can advise on relevant impurity panels for each — recycled-content material typically warrants closer attention to copper and other battery-component-derived contaminants.