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Convert Microhms to Quantized Hall Resistances

Microhm (μΩ) to Quantized Hall Resistance (R_K) electric resistance 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 Microhm = 3.87405E-11 Quantized Hall Resistances

1 Quantized Hall Resistance = 2.58128E+10 Microhms

1 μΩ in every supported unit

Conversion chart: Microhm to Quantized Hall Resistances

Conversion table

Microhm (μΩ) Quantized Hall Resistance (R_K)
0.01 μΩ 3.87405E-13 R_K
0.1 μΩ 3.87405E-12 R_K
1 μΩ 3.87405E-11 R_K
2 μΩ 7.74809E-11 R_K
3 μΩ 1.16221E-10 R_K
5 μΩ 1.93702E-10 R_K
10 μΩ 3.87405E-10 R_K
20 μΩ 7.74809E-10 R_K
50 μΩ 1.93702E-09 R_K
100 μΩ 3.87405E-09 R_K
1000 μΩ 3.87405E-08 R_K

Microhm (μΩ)

Definition: The SI submultiple equal to one-millionth of an ohm, reserved for resistances so small that even milliohms would be an unwieldy fraction.

History: Introduced for precision electrical metrology, where four-wire (Kelvin) resistance measurement techniques can resolve resistances down to the microhm level by eliminating lead and contact resistance from the reading.

Current use: Used to express the resistance of thick busbars, welded and bolted electrical joints, superconductor residual resistance measurements, and other near-zero-resistance connections in high-current power systems.

Quantized Hall Resistance (R_K)

Definition: A fundamental resistance quantum, R_K = h / e² (Planck's constant divided by the square of the elementary charge), that appears as the quantized plateaus of Hall resistance in the quantum Hall effect.

History: Discovered by Klaus von Klitzing in 1980 — work for which he received the 1985 Nobel Prize in Physics — the effect proved so precisely reproducible that the international metrology community adopted a fixed conventional value, R_K-90 = 25,812.807 ohms, as the worldwide resistance standard starting in 1990.

Current use: Still used by national metrology institutes to realize and calibrate the ohm with extraordinary precision, now tied to exact values of Planck's constant and the elementary charge under the SI's 2019 redefinition.

Supported Units

Unit Symbol In Ohm
Ohm Ω 1 Ω
Kiloohm kΩ 1000 Ω
Megohm MΩ 1000000 Ω
Milliohm mΩ 0.001 Ω
Microhm μΩ 1E-06 Ω
Volt/Ampere V/A 1 Ω
Reciprocal Siemens 1/S 1 Ω
Abohm abΩ 1E-09 Ω
EMU of Resistance EMU 1E-09 Ω
Statohm statΩ 8.98755E+11 Ω
ESU of Resistance ESU 8.98755E+11 Ω
Quantized Hall Resistance R_K 25812.807 Ω

About These Parameters

Value
The electric resistance value you want to convert, expressed in the "From" unit. Accepts decimals, and can represent anything from a microhm-scale connector contact resistance to a megohm-scale insulation-resistance reading.
From Unit
The unit your input value is currently measured in — a resistor's printed ohm or kiloohm rating, a megohmmeter's insulation reading, or an older figure quoted in a CGS unit like the abohm or statohm.
To Unit
The unit you want the result converted into. Use the swap button to flip From and To instantly, which is handy when moving between a datasheet's units and the ones used in your own calculations.

How Electric Resistance Conversion Works

The Formula

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

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

For Microhm → Quantized Hall Resistance: multiply by 3.87405E-11. For example, 1 μΩ × 3.87405E-11 = 3.87405E-11 R_K.

Ohm's Law and the Origin of the Ohm

Georg Simon Ohm published his now-famous law in 1827, showing that the current through a conductor is directly proportional to the voltage across it and inversely proportional to its resistance — a relationship so fundamental that essentially every electrical calculation traces back to it. At the time his work was met with skepticism and largely ignored by the German physics establishment; recognition came only later, and it wasn't until the International Electrical Congress of 1881 that "ohm" was formally adopted as the name of the resistance unit, defined so that one ohm is the resistance that lets one ampere flow when one volt is applied. Every SI multiple on this page — from milliohm up through megohm — is simply that same unit scaled by a power of ten for convenience.

Why CGS Resistance Units Still Appear

Before the SI system unified electrical units around the ampere, 19th-century physicists worked with two parallel centimeter-gram-second (CGS) systems: the electromagnetic (EMU) system, which gave us the abohm, and the electrostatic (ESU) system, which gave us the statohm — a unit so much larger than the ohm that it differs by a factor tied to the speed of light. Both systems were mathematically elegant for theoretical physics but impractical for engineering, which is why they were eventually superseded by the ampere-based SI units used almost everywhere today. They still turn up when reading historical electromagnetism papers or textbooks written in Gaussian units.

Example

An electric resistance of 1 μΩ equals 3.87405E-11 R_K. For scale, a typical carbon-film resistor might be rated between 100 ohms and a few megohms, a copper shunt used for current sensing might measure just a few milliohms, and a healthy insulation-resistance test on household wiring should read well into the megohms.

Frequently Asked Questions

How many Quantized Hall Resistances are in 1 Microhm?

1 Microhm (μΩ) equals exactly 3.87405E-11 Quantized Hall Resistances (R_K).

What's the difference between resistance and resistivity?

Resistance (measured in ohms) depends on a specific object's shape — its length and cross-sectional area — as well as the material it's made of. Resistivity (measured in ohm-meters) is a pure material property that stays the same regardless of the object's dimensions. Two wires of the same copper have the same resistivity, but a longer or thinner wire will have higher resistance. See the separate Electric Resistivity Converter for that quantity.

Is volt/ampere the same thing as an ohm?

Yes — they're numerically and dimensionally identical. The ohm is simply the named SI unit for the quantity that Ohm's law defines as voltage divided by current, so 1 V/A always equals exactly 1 Ω.

Why is the statohm so much larger than the ohm?

The statohm comes from the CGS electrostatic (ESU) unit system, which was built directly from Coulomb's law rather than the ampere-based definitions SI units use. The huge gap between the statohm and the ohm — roughly a factor of 9×10¹¹ — traces back to a conversion constant related to the speed of light that separates the electrostatic and electromagnetic CGS unit families.

What is quantized Hall resistance used for?

It's a fundamental resistance value, R_K = h/e², that appears as extremely precise, naturally quantized plateaus in the quantum Hall effect. Since 1990, national metrology institutes have used a fixed conventional value of this constant (25,812.807 ohms) as the international standard for calibrating precision resistance measurements, because it's far more reproducible than any physical resistor.

Convert Microhm to Other Electric Resistance Units

Possible Electric Resistance Conversions

Reciprocal Siemens to Volt/Amperes Milliohm to Reciprocal Siemens Quantized Hall Resistance to EMU of Resistance Volt/Ampere to Kiloohms Quantized Hall Resistance to Microhms Kiloohm to Statohms Volt/Ampere to Megohms ESU of Resistance to Ohms EMU of Resistance to Abohms Microhm to Megohms Statohm to Quantized Hall Resistances Volt/Ampere to ESU of Resistance Reciprocal Siemens to Ohms Microhm to EMU of Resistance Reciprocal Siemens to Quantized Hall Resistances Abohm to Ohms EMU of Resistance to Volt/Amperes Quantized Hall Resistance to Statohms ESU of Resistance to Microhms Megohm to Quantized Hall Resistances Quantized Hall Resistance to Megohms Ohm to Abohms Microhm to Ohms Reciprocal Siemens to Microhms Ohm to EMU of Resistance ESU of Resistance to Reciprocal Siemens Volt/Ampere to Abohms Reciprocal Siemens to EMU of Resistance Reciprocal Siemens to Kiloohms EMU of Resistance to Milliohms Volt/Ampere to Milliohms ESU of Resistance to EMU of Resistance Kiloohm to Reciprocal Siemens ESU of Resistance to Statohms Ohm to Reciprocal Siemens Milliohm to ESU of Resistance Megohm to Volt/Amperes EMU of Resistance to Reciprocal Siemens ESU of Resistance to Abohms Microhm to ESU of Resistance Abohm to Statohms Kiloohm to Milliohms Microhm to Milliohms Microhm to Abohms Reciprocal Siemens to ESU of Resistance Milliohm to EMU of Resistance Reciprocal Siemens to Milliohms EMU of Resistance to Quantized Hall Resistances EMU of Resistance to Microhms Statohm to Abohms ESU of Resistance to Megohms Microhm to Kiloohms EMU of Resistance to ESU of Resistance EMU of Resistance to Statohms Kiloohm to ESU of Resistance Milliohm to Microhms Quantized Hall Resistance to Milliohms Milliohm to Ohms Milliohm to Quantized Hall Resistances ESU of Resistance to Quantized Hall Resistances Ohm to Statohms Ohm to Milliohms Abohm to Kiloohms Abohm to Milliohms Kiloohm to Microhms Quantized Hall Resistance to ESU of Resistance ESU of Resistance to Volt/Amperes Kiloohm to EMU of Resistance Quantized Hall Resistance to Ohms EMU of Resistance to Kiloohms Abohm to EMU of Resistance Reciprocal Siemens to Statohms Megohm to Milliohms Abohm to ESU of Resistance Megohm to ESU of Resistance Kiloohm to Megohms Microhm to Volt/Amperes Kiloohm to Volt/Amperes Kiloohm to Abohms Ohm to Volt/Amperes Ohm to Quantized Hall Resistances Abohm to Megohms Statohm to Megohms Megohm to Kiloohms Statohm to ESU of Resistance Abohm to Quantized Hall Resistances Volt/Ampere to Statohms Ohm to Kiloohms Volt/Ampere to EMU of Resistance Ohm to Megohms Statohm to Kiloohms Kiloohm to Ohms Quantized Hall Resistance to Abohms Quantized Hall Resistance to Volt/Amperes Volt/Ampere to Ohms Abohm to Reciprocal Siemens Milliohm to Kiloohms Volt/Ampere to Quantized Hall Resistances ESU of Resistance to Kiloohms Milliohm to Abohms Milliohm to Megohms Statohm to Volt/Amperes Megohm to Statohms Milliohm to Statohms Reciprocal Siemens to Abohms ESU of Resistance to Milliohms Ohm to Microhms Kiloohm to Quantized Hall Resistances EMU of Resistance to Ohms Volt/Ampere to Microhms Microhm to Reciprocal Siemens Megohm to Ohms Quantized Hall Resistance to Reciprocal Siemens Ohm to ESU of Resistance Statohm to Ohms Statohm to Microhms Abohm to Microhms Megohm to Abohms Quantized Hall Resistance to Kiloohms Volt/Ampere to Reciprocal Siemens Statohm to Milliohms Microhm to Statohms Megohm to Reciprocal Siemens Reciprocal Siemens to Megohms Statohm to EMU of Resistance Statohm to Reciprocal Siemens Abohm to Volt/Amperes Microhm to Quantized Hall Resistances Milliohm to Volt/Amperes Megohm to EMU of Resistance EMU of Resistance to Megohms Megohm to Microhms

See also