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Convert Ohm Centimeters to Microhm Centimeters

Ohm Centimeter (Ω·cm) to Microhm Centimeter (μΩ·cm) electric resistivity 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 Ohm Centimeter = 1000000 Microhm Centimeters

1 Microhm Centimeter = 1E-06 Ohm Centimeters

1 Ω·cm in every supported unit

Conversion chart: Ohm Centimeter to Microhm Centimeters

Conversion table

Ohm Centimeter (Ω·cm) Microhm Centimeter (μΩ·cm)
0.01 Ω·cm 10000 μΩ·cm
0.1 Ω·cm 100000 μΩ·cm
1 Ω·cm 1000000 μΩ·cm
2 Ω·cm 2000000 μΩ·cm
3 Ω·cm 3000000 μΩ·cm
5 Ω·cm 5000000 μΩ·cm
10 Ω·cm 10000000 μΩ·cm
20 Ω·cm 20000000 μΩ·cm
50 Ω·cm 50000000 μΩ·cm
100 Ω·cm 1E+08 μΩ·cm
1000 Ω·cm 1E+09 μΩ·cm

Ohm Centimeter (Ω·cm)

Definition: A resistivity unit that substitutes the centimeter for the meter as the reference length, making the numeric value 100 times larger than the equivalent ohm-meter figure for the same physical material.

History: It arose from the CGS-adjacent convention of measuring resistivity in centimeters, which persisted in materials science and especially the semiconductor industry long after the meter became the SI-preferred length unit elsewhere.

Current use: The de facto standard unit for specifying silicon and other semiconductor wafer resistivity in the electronics industry — wafer suppliers and doping specifications are almost always quoted in Ω·cm.

Microhm Centimeter (μΩ·cm)

Definition: A resistivity unit combining the microhm (one-millionth of an ohm) with the centimeter, sized conveniently for the naturally low resistivity of metals and metal alloys.

History: Adopted by metallurgists and materials engineers because expressing metal resistivity in ohm-meters would require awkward negative powers of ten in everyday tables, while microhm-centimeters keep the typical values in a simple, easy-to-compare range.

Current use: The standard unit in metallurgical handbooks and alloy datasheets for reporting metal resistivity — copper is about 1.68 μΩ·cm and aluminum about 2.65 μΩ·cm at room temperature.

Supported Units

Unit Symbol In Ohm Meter
Ohm Meter Ω·m 1 Ω·m
Ohm Centimeter Ω·cm 0.01 Ω·m
Ohm Inch Ω·in 0.0254 Ω·m
Microhm Centimeter μΩ·cm 1E-08 Ω·m
Microhm Inch μΩ·in 2.54E-08 Ω·m
Abohm Centimeter abΩ·cm 1E-11 Ω·m
Statohm Centimeter statΩ·cm 8.98755E+09 Ω·m
Circular Mil Ohm/Foot cmil·Ω/ft 1.66243E-09 Ω·m

About These Parameters

Value
The electric resistivity value you want to convert, expressed in the "From" unit. Accepts decimals, and can represent anything from a metal's resistivity in microhm-centimeters to a semiconductor's resistivity in ohm-centimeters.
From Unit
The unit your input value is currently measured in — a wafer datasheet's ohm-centimeter rating, a wire table's circular-mil-ohm-per-foot figure, or an older CGS unit like abohm-centimeter or statohm-centimeter.
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 a material spec into the units used in your own design calculations.

How Electric Resistivity Conversion Works

The Formula

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

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

For Ohm Centimeter → Microhm Centimeter: multiply by 1000000. For example, 1 Ω·cm × 1000000 = 1000000 μΩ·cm.

Resistivity vs. Resistance

Resistance (in ohms) tells you how much a specific object opposes current, but that number depends on the object's length and cross-sectional area as much as it depends on what it's made of — double a wire's length and its resistance doubles; double its cross-section and resistance halves. Resistivity strips geometry out of the equation entirely, describing only the material itself: copper is always about 1.68×10⁻⁸ Ω·m regardless of whether it's a hair-thin wire or a thick busbar. That makes resistivity the number engineers actually compare when choosing between materials, while resistance is what they calculate afterward once a specific shape is chosen.

Why So Many Length-Based Variants

Because resistivity is measured "per unit length" in some form, every length unit in common engineering use has spawned its own resistivity unit: centimeters gave the semiconductor industry ohm-centimeter and metallurgy microhm-centimeter, inches gave American manufacturing ohm-inch and microhm-inch, and the circular mil — the standard cross-sectional-area unit for American Wire Gauge tables — combined with the foot to give wire engineers circular-mil-ohm-per- foot, a unit that lets them compute a wire's resistance directly from its AWG size without an extra area conversion. The CGS-era abohm-centimeter and statohm-centimeter round out the list as relics of 19th-century electromagnetic and electrostatic unit systems.

Example

An electric resistivity of 1 Ω·cm equals 1000000 μΩ·cm. For scale, copper's resistivity is about 1.68×10⁻⁸ Ω·m (1.68 μΩ·cm), a typical doped silicon wafer for integrated circuits might run anywhere from about 0.001 to 100 Ω·cm depending on doping level, and a good electrical insulator like glass can exceed 10¹² Ω·m.

Frequently Asked Questions

How many Microhm Centimeters are in 1 Ohm Centimeter?

1 Ohm Centimeter (Ω·cm) equals exactly 1000000 Microhm Centimeters (μΩ·cm).

What's the difference between resistivity and resistance?

Resistivity (ohm-meters) is a property of the material alone, unaffected by shape or size. Resistance (ohms) is the property of one specific object, and depends on that material's resistivity plus the object's length and cross-sectional area. See the separate Electric Resistance Converter for that quantity.

Why do semiconductor datasheets use ohm-centimeters instead of ohm-meters?

Silicon wafer resistivity values typically fall in a range — roughly 0.001 to 100 ohm-centimeters — that reads more naturally in centimeters than in the much smaller numbers meters would produce. The convention stuck from the CGS era and remains the semiconductor industry standard today, even though the rest of SI has moved to meters.

What is a circular mil, and why does wire resistivity use it?

A circular mil is the area of a circle exactly one mil (0.001 inch) in diameter — the standard cross-sectional-area unit used throughout the American Wire Gauge (AWG) system. Expressing wire resistivity in ohms per circular mil per foot lets engineers compute a wire's resistance straight from its AWG size and length, without a separate step to convert circular mils into square inches or square millimeters first.

Are abohm-centimeter and statohm-centimeter still used?

Almost never in modern engineering. They're the resistivity units of the 19th-century CGS electromagnetic (EMU) and electrostatic (ESU) systems respectively, and survive mainly in historical physics literature and theoretical derivations written in Gaussian units, well before the SI's ohm-meter became the near-universal standard.

Convert Ohm Centimeter to Other Electric Resistivity Units

Possible Electric Resistivity Conversions

Microhm Centimeter to Ohm Centimeters Ohm Centimeter to Ohm Inches Circular Mil Ohm/Foot to Statohm Centimeters Ohm Meter to Microhm Inches Microhm Centimeter to Microhm Inches Microhm Inch to Abohm Centimeters Microhm Inch to Ohm Meters Abohm Centimeter to Ohm Inches Ohm Centimeter to Microhm Centimeters Ohm Centimeter to Abohm Centimeters Ohm Inch to Microhm Centimeters Ohm Inch to Microhm Inches Microhm Inch to Ohm Centimeters Abohm Centimeter to Ohm Centimeters Circular Mil Ohm/Foot to Ohm Meters Circular Mil Ohm/Foot to Microhm Inches Circular Mil Ohm/Foot to Microhm Centimeters Abohm Centimeter to Ohm Meters Statohm Centimeter to Ohm Inches Ohm Inch to Abohm Centimeters Ohm Meter to Circular Mil Ohm/Foot Ohm Meter to Ohm Centimeters Abohm Centimeter to Circular Mil Ohm/Foot Statohm Centimeter to Circular Mil Ohm/Foot Ohm Meter to Ohm Inches Microhm Centimeter to Ohm Meters Statohm Centimeter to Ohm Centimeters Ohm Centimeter to Circular Mil Ohm/Foot Abohm Centimeter to Statohm Centimeters Ohm Centimeter to Microhm Inches Statohm Centimeter to Abohm Centimeters Ohm Meter to Statohm Centimeters Circular Mil Ohm/Foot to Abohm Centimeters Abohm Centimeter to Microhm Inches Circular Mil Ohm/Foot to Ohm Centimeters Statohm Centimeter to Microhm Centimeters Microhm Inch to Statohm Centimeters Statohm Centimeter to Microhm Inches Microhm Inch to Circular Mil Ohm/Foot Ohm Inch to Ohm Meters Microhm Inch to Microhm Centimeters Microhm Centimeter to Ohm Inches Statohm Centimeter to Ohm Meters Abohm Centimeter to Microhm Centimeters Microhm Centimeter to Statohm Centimeters Microhm Centimeter to Circular Mil Ohm/Foot Ohm Centimeter to Statohm Centimeters Ohm Inch to Circular Mil Ohm/Foot Ohm Meter to Abohm Centimeters Ohm Inch to Ohm Centimeters Ohm Centimeter to Ohm Meters Microhm Inch to Ohm Inches Ohm Meter to Microhm Centimeters Circular Mil Ohm/Foot to Ohm Inches Ohm Inch to Statohm Centimeters Microhm Centimeter to Abohm Centimeters

See also