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Convert Quantized Hall Conductances to Mhos

Quantized Hall Conductance (e²/h) to Mho (℧) electric conductance 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 Quantized Hall Conductance = 3.87405E-05 Mhos

1 Mho = 25812.78 Quantized Hall Conductances

1 e²/h in every supported unit

Conversion chart: Quantized Hall Conductance to Mhos

Conversion table

Quantized Hall Conductance (e²/h) Mho (℧)
0.01 e²/h 3.87405E-07 ℧
0.1 e²/h 3.87405E-06 ℧
1 e²/h 3.87405E-05 ℧
2 e²/h 7.7481E-05 ℧
3 e²/h 0.0001162215 ℧
5 e²/h 0.0001937025 ℧
10 e²/h 0.000387405 ℧
20 e²/h 0.00077481 ℧
50 e²/h 0.001937025 ℧
100 e²/h 0.00387405 ℧
1000 e²/h 0.0387405 ℧

Quantized Hall Conductance (e²/h)

Definition: A fundamental physical constant of conductance, equal to the square of the elementary charge divided by the Planck constant (e²/h ≈ 3.87405 × 10⁻⁵ S). It is the natural step size by which conductance jumps in the quantum Hall effect, observed in two-dimensional electron systems under strong magnetic fields at low temperature.

History: It was discovered experimentally by Klaus von Klitzing in 1980, who found that the Hall conductance of a two-dimensional electron gas increases in exact, universal integer steps of e²/h regardless of the material or sample geometry — a discovery that earned him the 1985 Nobel Prize in Physics.

Current use: Used today as a precision metrological reference: because e²/h depends only on fundamental constants, the quantum Hall effect underpins the international standard for the ohm (and by reciprocal extension, the siemens), letting national metrology labs realize electrical resistance and conductance from first principles rather than physical artifact standards.

Mho (℧)

Definition: An older, non-SI name for the unit of electrical conductance, formed by spelling "ohm" backwards to emphasize that conductance is the mathematical reciprocal of resistance. Its symbol, an upside-down omega (℧), makes the same visual pun.

History: Coined in the 19th century (commonly attributed to William Thomson, Lord Kelvin, and later popularized by engineer Oliver Heaviside) as a quick, memorable way to name the reciprocal-ohm unit before any formal standards body had settled on an official name, the mho was in widespread use throughout the 20th century.

Current use: Numerically identical to the siemens (1 mho = 1 S) and still encountered in older electrical engineering textbooks, legacy equipment nameplates, and U.S. water-quality literature, even though the siemens is now the internationally standardized name.

Supported Units

Unit Symbol In Siemens
Siemens S 1 S
Megasiemens MS 1000000 S
Kilosiemens kS 1000 S
Millisiemens mS 0.001 S
Microsiemens µS 1E-06 S
Ampere/Volt A/V 1 S
Mho 1 S
Gemmho gemmho 1E-06 S
Micromho µmho 1E-06 S
Abmho abmho 1E+09 S
Statmho statmho 1.11235E-12 S
Quantized Hall Conductance e²/h 3.87405E-05 S

About These Parameters

Value
The conductance value you want to convert, expressed in the "From" unit. Accepts decimals, and can represent anything from a picosiemens-level insulator leakage figure to a gigasiemens-scale superconductor measurement.
From Unit
The unit your input value is currently measured in — a modern component datasheet's siemens (S) rating, or a legacy figure quoted in mho, abmho, or statmho.
To Unit
The unit you want the result converted into. Use the swap button to flip From and To instantly, which is handy when translating an older mho-based figure into the modern siemens or vice versa.

How Electric Conductance Conversion Works

The Formula

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

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

For Quantized Hall Conductance → Mho: multiply by 3.87405E-05. For example, 1 e²/h × 3.87405E-05 = 3.87405E-05 ℧.

Conductance Is the Reciprocal of Resistance

Conductance and resistance describe the same physical relationship between voltage and current from opposite directions: resistance (ohms) measures how strongly a component opposes current flow, while conductance (siemens) measures how readily it allows current through. Because they are exact reciprocals (G = 1/R), a very good conductor — a thick copper busbar, for example — has a tiny resistance and a correspondingly large conductance, while a good insulator has a huge resistance and a conductance so small it is usually expressed in picosiemens or smaller. This reciprocal relationship is also why conductances of components wired in parallel simply add together, while their resistances do not.

From Mho to Siemens

Before 1971, the unit of conductance had no single settled name: engineers commonly called it the "mho" — "ohm" spelled backwards, with an upside-down omega (℧) as its symbol — to emphasize that it was resistance's reciprocal. The International Electrotechnical Commission formally adopted "siemens," named for Ernst Werner von Siemens, in 1935, and the unit was folded into the International System of Units in 1971, gradually displacing "mho" in textbooks, standards, and datasheets over the following decades. The two units remain numerically identical (1 mho = 1 S), so older equipment and literature that still uses "mho" converts to the modern siemens with a factor of exactly 1.

Example

A conductance of 1 e²/h equals 3.87405E-05 ℧. For scale, a typical incandescent light bulb filament has a conductance around 0.08 siemens (roughly 12 ohms of resistance), a thick copper ground strap can exceed several thousand siemens, and a high-quality electrical insulator's leakage conductance is often measured in picosiemens or smaller.

Frequently Asked Questions

How many Mhos are in 1 Quantized Hall Conductance?

1 Quantized Hall Conductance (e²/h) equals exactly 3.87405E-05 Mhos (℧).

What is the difference between conductance and conductivity?

Conductance (siemens) describes a specific object or component's ability to conduct current — it depends on that object's size, shape, and material. Conductivity (siemens per meter) is a material property that strips out size and shape, describing how well a material conducts current per unit length regardless of the particular sample. Use this converter for whole-component conductance; use the companion Electric Conductivity Converter for the size-independent material property.

Is mho the same as siemens?

Yes — mho and siemens are numerically identical (1 mho = 1 S). "Mho" was the informal, widely used name for the unit before the International Electrotechnical Commission standardized "siemens" in 1935, and it still appears in older equipment, textbooks, and some U.S. water-quality literature.

Why is the quantized Hall conductance such a small, oddly specific number?

The quantized Hall conductance (e²/h ≈ 3.87405 × 10⁻⁵ S) is a fundamental physical constant, not a rounded engineering unit — it's built from the elementary charge (e) and the Planck constant (h). Discovered by Klaus von Klitzing in 1980, it's the exact step size by which conductance jumps in the quantum Hall effect, and because it depends only on fundamental constants, it's used today as a precision reference for realizing the ohm and siemens in metrology labs.

What are abmho and statmho used for today?

Abmho (from the CGS-EMU system) and statmho (from the CGS-ESU system) are both 19th-century units of conductance that predate the SI. They're rarely used in modern engineering, but still appear occasionally in historical physics literature and in theoretical work that frames electromagnetic calculations natively in CGS units rather than SI.

Convert Quantized Hall Conductance to Other Electric Conductance Units

Possible Electric Conductance Conversions

Statmho to Mhos Gemmho to Megasiemens Megasiemens to Microsiemens Mho to Statmhos Abmho to Millisiemens Micromho to Gemmhos Kilosiemens to Amperes/Volt Ampere/Volt to Kilosiemens Statmho to Gemmhos Ampere/Volt to Abmhos Micromho to Mhos Gemmho to Statmhos Microsiemens to Kilosiemens Mho to Abmhos Siemens to Microsiemens Gemmho to Kilosiemens Siemens to Kilosiemens Megasiemens to Mhos Abmho to Microsiemens Statmho to Micromhos Ampere/Volt to Statmhos Quantized Hall Conductance to Megasiemens Megasiemens to Quantized Hall Conductances Statmho to Amperes/Volt Millisiemens to Kilosiemens Millisiemens to Statmhos Microsiemens to Statmhos Micromho to Statmhos Siemens to Quantized Hall Conductances Gemmho to Siemens Siemens to Micromhos Mho to Amperes/Volt Gemmho to Abmhos Quantized Hall Conductance to Kilosiemens Siemens to Abmhos Statmho to Millisiemens Abmho to Statmhos Millisiemens to Abmhos Kilosiemens to Micromhos Quantized Hall Conductance to Statmhos Micromho to Microsiemens Microsiemens to Abmhos Ampere/Volt to Millisiemens Ampere/Volt to Gemmhos Mho to Siemens Statmho to Abmhos Millisiemens to Micromhos Ampere/Volt to Siemens Millisiemens to Megasiemens Mho to Microsiemens Abmho to Megasiemens Gemmho to Amperes/Volt Ampere/Volt to Mhos Micromho to Abmhos Millisiemens to Microsiemens Ampere/Volt to Microsiemens Megasiemens to Millisiemens Siemens to Statmhos Microsiemens to Amperes/Volt Megasiemens to Gemmhos Kilosiemens to Megasiemens Statmho to Siemens Ampere/Volt to Micromhos Gemmho to Quantized Hall Conductances Microsiemens to Gemmhos Mho to Kilosiemens Microsiemens to Millisiemens Microsiemens to Quantized Hall Conductances Microsiemens to Siemens Kilosiemens to Siemens Gemmho to Mhos Gemmho to Millisiemens Quantized Hall Conductance to Millisiemens Abmho to Gemmhos Megasiemens to Statmhos Siemens to Gemmhos Micromho to Kilosiemens Ampere/Volt to Quantized Hall Conductances Megasiemens to Amperes/Volt Kilosiemens to Quantized Hall Conductances Abmho to Micromhos Abmho to Quantized Hall Conductances Quantized Hall Conductance to Gemmhos Micromho to Millisiemens Gemmho to Microsiemens Statmho to Quantized Hall Conductances Millisiemens to Siemens Mho to Quantized Hall Conductances Megasiemens to Siemens Millisiemens to Quantized Hall Conductances Kilosiemens to Abmhos Mho to Micromhos Quantized Hall Conductance to Siemens Abmho to Mhos Siemens to Amperes/Volt Millisiemens to Gemmhos Abmho to Amperes/Volt Siemens to Megasiemens Micromho to Siemens Mho to Millisiemens Quantized Hall Conductance to Abmhos Statmho to Megasiemens Millisiemens to Amperes/Volt Microsiemens to Megasiemens Ampere/Volt to Megasiemens Kilosiemens to Statmhos Quantized Hall Conductance to Microsiemens Kilosiemens to Microsiemens Statmho to Kilosiemens Millisiemens to Mhos Statmho to Microsiemens Micromho to Amperes/Volt Microsiemens to Micromhos Mho to Gemmhos Abmho to Kilosiemens Quantized Hall Conductance to Mhos Microsiemens to Mhos Kilosiemens to Mhos Siemens to Mhos Quantized Hall Conductance to Amperes/Volt Quantized Hall Conductance to Micromhos Kilosiemens to Millisiemens Gemmho to Micromhos Megasiemens to Micromhos Mho to Megasiemens Megasiemens to Abmhos Micromho to Megasiemens Megasiemens to Kilosiemens Siemens to Millisiemens Abmho to Siemens Micromho to Quantized Hall Conductances Kilosiemens to Gemmhos

See also