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Convert Microhenries to Nanohenries

Microhenry (µH) to Nanohenry (nH) inductance conversion — enter any value below to get an instant result, or use the table for common values.

Results from this calculator are estimates provided for general informational purposes only, based on formulas, rates, and standards commonly accepted as of 2026. Figures may differ slightly from other calculators or professional sources due to rounding methods, differing assumptions, or regional regulations, and rules may change over time. Always consult a qualified professional — such as a financial advisor, healthcare provider, or other relevant specialist — before making decisions based on these results.

The numeric value you want to convert. Decimals are accepted.

Result

1 Microhenry = 1000 Nanohenries

1 Nanohenry = 0.001 Microhenries

1 µH in every supported unit

Conversion chart: Microhenry to Nanohenries

Conversion table

Microhenry (µH) Nanohenry (nH)
0.01 µH 10 nH
0.1 µH 100 nH
1 µH 1000 nH
2 µH 2000 nH
3 µH 3000 nH
5 µH 5000 nH
10 µH 10000 nH
20 µH 20000 nH
50 µH 50000 nH
100 µH 100000 nH
1000 µH 1000000 nH

Microhenry (µH)

Definition: One millionth of a henry (1 µH = 0.000001 H), the standard scale for small signal and RF inductors.

History: It was introduced as radio and high-frequency circuit design required inductance values far below a millihenry, following the same SI "micro-" prefix used across other electrical units.

Current use: Widely used for RF chokes, antenna coils, and the small inductors found in switching power supplies and wireless communication circuits, where even a PCB trace or wire loop can contribute a measurable fraction of a microhenry.

Nanohenry (nH)

Definition: One billionth of a henry (1 nH = 0.000000001 H), used for the very small inductances found in high-frequency and high-speed digital circuits.

History: It became practically relevant as radio-frequency and microwave engineering, and later high-speed digital signal-integrity work, needed to quantify inductance well below the microhenry scale, including parasitic inductance from wires and leads.

Current use: The typical unit for specifying bond-wire inductance in integrated-circuit packaging, PCB trace inductance, and small RF-tuning inductors used in gigahertz-range wireless circuits.

Supported Units

Unit Symbol In Henry
Henry H 1 H
Kilohenry kH 1000 H
Millihenry mH 0.001 H
Microhenry µH 1E-06 H
Nanohenry nH 1E-09 H
Picohenry pH 1E-12 H
Femtohenry fH 1E-15 H
Abhenry abH 1E-09 H
Stathenry statH 8.98755E+11 H
Weber/Ampere Wb/A 1 H

About These Parameters

Value
The inductance value you want to convert, expressed in the "From" unit. Accepts decimals, and can represent anything from a tiny nanohenry PCB-trace parasitic to a large power-transformer winding's multi-henry rating.
From Unit
The unit your input value is currently measured in — an inductor datasheet's millihenry or microhenry rating, or a historical figure quoted in abhenries or stathenries from the older CGS unit systems.
To Unit
The unit you want the result converted into. Use the swap button to flip From and To instantly, handy when translating a datasheet value into a different SI-prefixed scale or back to the base henry.

How Inductance Conversion Works

The Formula

Every unit here is defined by a fixed multiplier relative to the henry. To convert a value from one unit to another:

result = value × (factor of "From" unit ÷ factor of "To" unit)

For Microhenry → Nanohenry: multiply by 1000. For example, 1 µH × 1000 = 1000 nH.

Why Inductors Span Such a Wide Range of Units

A henry is a relatively large amount of inductance for a physical coil to produce — winding enough turns around a large enough core to reach a full henry generally means a bulky component, the kind found in mains-frequency power transformers and large chokes. Most inductors used in switching power supplies, RF circuits, and signal filtering only need a fraction of a henry to do their job, which is why millihenries and microhenries are the everyday scale for real components. At the other extreme, any wire, PCB trace, or connector lead has some small amount of unavoidable "parasitic" inductance — usually measured in nanohenries or picohenries — that becomes significant only at the high frequencies and fast switching speeds used in modern digital and RF electronics.

SI Henries vs. CGS Abhenries and Stathenries

Before the SI system unified electrical units around the henry, volt, and ampere, 19th-century physicists worked in the centimeter-gram-second (CGS) system, which split into two competing branches: the electromagnetic (emu) branch, whose inductance unit is the abhenry (equal to a tiny one billionth of a henry), and the electrostatic (esu) branch, whose unit is the stathenry (equal to a massive 898.8 billion henries). That enormous gap — the mirror image of the abfarad/statfarad relationship in capacitance — comes from the same speed-of-light-squared relationship that links the esu and emu systems throughout classical electromagnetism. Modern electronics almost never uses either CGS unit directly, but they still turn up when translating older theoretical physics texts into today's henry-based units.

Example

An inductance of 1 µH equals 1000 nH. For scale, a small RF inductor on a circuit board might be rated around 10 microhenries, a typical switching power-supply inductor might be a few hundred microhenries to a few millihenries, and a large mains-frequency power transformer winding can reach several henries.

Frequently Asked Questions

How many Nanohenries are in 1 Microhenry?

1 Microhenry (µH) equals exactly 1000 Nanohenries (nH).

Why are inductors almost never rated in whole henries?

A henry is a relatively large amount of inductance to build into a small, practical coil — reaching a full henry typically requires a bulky winding around a large magnetic core, the kind used in mains-frequency transformers. Everyday inductors in power supplies, RF circuits, and filters only need a fraction of a henry, so they're rated in millihenries or microhenries instead.

Is weber/ampere the same thing as a henry?

Yes — they're mathematically identical. The henry is defined as exactly one weber of magnetic flux linkage per ampere of current (1 H = 1 Wb/A), so expressing an inductance in webers per ampere gives the exact same numeric value as expressing it in henries.

Why is the stathenry so much larger than the abhenry?

Both come from the older centimeter-gram-second (CGS) system, but from opposite branches: the abhenry is a CGS electromagnetic (emu) unit, while the stathenry is a CGS electrostatic (esu) unit. The two branches are related by the speed of light squared, which is why the abhenry (10⁻⁹ henries) and stathenry (about 8.9876 × 10¹¹ henries) sit roughly 21 orders of magnitude apart despite both measuring inductance.

What's a typical inductance value for common electronics?

It depends heavily on the application: RF and high-frequency tuning circuits often use nanohenry to microhenry inductors, switching power-supply inductors commonly range from a few microhenries to a few millihenries, and large mains-frequency transformer or motor windings can reach several henries. Kilohenry-scale inductance is essentially never seen outside specialized grid equipment.

Convert Microhenry to Other Inductance Units

Possible Inductance Conversions

Picohenry to Millihenries Microhenry to Abhenries Kilohenry to Webers/Ampere Kilohenry to Henries Millihenry to Henries Millihenry to Stathenries Abhenry to Femtohenries Kilohenry to Nanohenries Nanohenry to Microhenries Nanohenry to Webers/Ampere Abhenry to Stathenries Kilohenry to Millihenries Stathenry to Microhenries Millihenry to Abhenries Microhenry to Millihenries Millihenry to Femtohenries Microhenry to Femtohenries Stathenry to Femtohenries Stathenry to Millihenries Picohenry to Femtohenries Picohenry to Kilohenries Stathenry to Webers/Ampere Weber/Ampere to Nanohenries Kilohenry to Abhenries Nanohenry to Millihenries Nanohenry to Stathenries Nanohenry to Abhenries Microhenry to Stathenries Femtohenry to Stathenries Nanohenry to Femtohenries Microhenry to Nanohenries Abhenry to Nanohenries Weber/Ampere to Picohenries Weber/Ampere to Stathenries Henry to Webers/Ampere Abhenry to Millihenries Picohenry to Abhenries Weber/Ampere to Kilohenries Stathenry to Abhenries Stathenry to Kilohenries Abhenry to Picohenries Nanohenry to Henries Femtohenry to Picohenries Microhenry to Kilohenries Femtohenry to Webers/Ampere Millihenry to Microhenries Weber/Ampere to Microhenries Millihenry to Webers/Ampere Weber/Ampere to Millihenries Weber/Ampere to Henries Henry to Femtohenries Femtohenry to Abhenries Femtohenry to Kilohenries Abhenry to Kilohenries Femtohenry to Henries Nanohenry to Picohenries Henry to Abhenries Millihenry to Picohenries Kilohenry to Microhenries Millihenry to Nanohenries Henry to Stathenries Abhenry to Henries Picohenry to Microhenries Henry to Nanohenries Kilohenry to Picohenries Henry to Kilohenries Stathenry to Henries Abhenry to Microhenries Henry to Millihenries Picohenry to Henries Picohenry to Stathenries Nanohenry to Kilohenries Abhenry to Webers/Ampere Henry to Microhenries Stathenry to Picohenries Femtohenry to Nanohenries Weber/Ampere to Femtohenries Millihenry to Kilohenries Picohenry to Nanohenries Femtohenry to Microhenries Stathenry to Nanohenries Femtohenry to Millihenries Weber/Ampere to Abhenries Microhenry to Picohenries Kilohenry to Stathenries Microhenry to Henries Picohenry to Webers/Ampere Kilohenry to Femtohenries Henry to Picohenries Microhenry to Webers/Ampere

See also