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Selection Guide2026-08-09 · 6 min read

MnZn vs NiZn Ferrite: Selection Guide

Quick AnswerMnZn ferrite (µ 1000–15000, Bs ~0.45T, resistivity ~0.5–5 Ω·m) is the choice below roughly 1MHz for power transformers, power inductors and PFC/LLC stages. NiZn ferrite (µ 10–500, resistivity 10³–10⁶ Ω·m) suits 1MHz to 100MHz+ for EMI chokes, RF inductors and noise filters. The crossover is driven by eddy-current loss: above ~1MHz, NiZn’s high resistivity wins.

MnZn and NiZn are the two ferrite families that cover almost every magnetic application below microwave frequencies. Both are soft ferrite ceramics, but their composition changes the resistivity and therefore the frequency limit. This guide explains the difference and gives a practical selection rule.

1. What separates the two families

MnZn ferrite contains manganese and zinc and has a high permeability (typically 1000–15000) but a low resistivity of about 0.5–5 Ω·m. NiZn ferrite contains nickel and zinc, offers much lower permeability (10–500) but a resistivity orders of magnitude higher (10³–10⁶ Ω·m). Because eddy-current loss falls as resistivity rises, NiZn keeps losses low at much higher frequencies.

2. MnZn vs NiZn at a glance

PropertyMnZnNiZn
Initial permeability1000–1500010–500
Saturation Bs≈ 0.4–0.5 T≈ 0.25–0.35 T
Resistivity0.5–5 Ω·m10³–10⁶ Ω·m
Practical frequency< ~1 MHz (some to 5 MHz)1 MHz – 100 MHz+
Core lossVery low at power frequenciesLow at RF frequencies
CostLowSlightly higher
Typical useTransformers, power inductors, PFC/LLCEMI chokes, RF inductors, filters

3. When to choose MnZn

For 50kHz–1MHz switch-mode power conversion, MnZn is the standard: high permeability means fewer turns for a given inductance, and its low core loss at power frequencies keeps transformers and PFC/LLC inductors efficient. Ferrite power cores in E, PQ and RM shapes for SMPS are almost always MnZn.

4. When to choose NiZn

Above roughly 1MHz, MnZn eddy-current loss climbs quickly. NiZn’s high resistivity keeps the core loss acceptable from 1MHz into the 100MHz+ range, which makes it the material for EMI suppression chokes on cables, RF inductors, antenna matching and high-frequency noise filters. The trade-off is lower permeability and lower Bs.

5. Common application map

  • SMPS transformer / power inductor (50kHz–1MHz) → MnZn
  • PFC boost and LLC resonant stages → MnZn (low loss, high Bs)
  • EMI common-mode choke on input/output lines → NiZn (high impedance at MHz)
  • RF inductor / balun / antenna matching → NiZn
  • Broadband noise suppression on cables → NiZn beads

6. Selection rule of thumb

Start with the switching or noise frequency. Below ~1MHz, evaluate MnZn first for size and cost; above ~1MHz, move to NiZn before core loss becomes the bottleneck. If a design sits right at the boundary, ask the supplier for loss curves at your exact frequency — the crossover depends on grade, flux density and temperature.

YUTE Magnetics supplies custom MnZn and NiZn ferrite cores with material grade selection, tooling design and AEC-Q200 qualification. Send your frequency, inductance and EMI targets for a free engineering evaluation.

See the Ferrite Core Guide, the High-Frequency Core Material Selection guide and the Technical Data tables for detailed grades.

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