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Mohs scale

earth science Maturity 11-13

Some rocks are hard. Some are soft. You can test them. A hard rock can scratch a soft rock. A diamond is the hardest.

Rough diamond.jpg
Rough diamond.jpg
Can you find a hard rock?

32 words

Some minerals are hard. Some are soft.

Talc block.jpg
Talc block.jpg
You can tell by seeing if one can scratch another. A hard mineral will leave a mark on a soft one.

There is a list from 1 to 10. It uses ten special minerals.

Mohssche-haerteskala hg.jpg
Mohssche-haerteskala hg.jpg
Talc is at number 1. It is very soft.
Gypse Arignac.jpg
Gypse Arignac.jpg

Diamond is at number 10. It is the hardest.

Rough diamond.jpg
Rough diamond.jpg
Scientists use this list to name minerals. It helps them work outside. This list is a great tool for discovery.

87 words

How hard is a mineral? Scientists find out by using scratches.

Mohssche-haerteskala hg.jpg
Mohssche-haerteskala hg.jpg

Friedrich Mohs made a special list in 1812. We call it the Mohs scale. It goes from 1 to 10. It measures how well a mineral resists scratches. A harder mineral can scratch a softer one.

Talc block.jpg
Talc block.jpg

Each number on the scale uses a reference mineral. Talc is number 1. It is very soft.

Gypse Arignac.jpg
Gypse Arignac.jpg
Diamond is number 10. It is the hardest mineral known.
Rough diamond.jpg
Rough diamond.jpg

You can find a mineral's number by testing it. If apatite scratches a stone, but fluorite does not, the stone is between 4 and 5. This helps geologists identify minerals in the field.

Apatite Canada.jpg
Apatite Canada.jpg

This scale is not perfect for big factories. It does not show absolute hardness. For example, diamond is much harder than corundum. But the scale only shows the order. It is still a very useful tool for science.

155 words

Have you ever wondered why some rocks feel smooth while others feel rough?

Mohssche-haerteskala hg.jpg
Mohssche-haerteskala hg.jpg
Scientists use a special way to measure how well minerals resist being scratched. This is called the Mohs scale. It is a list of numbers from 1 to 10. The scale helps us understand mineral hardness. A harder material can scratch a softer material. This simple idea helps us group many different minerals together.
Talc block.jpg
Talc block.jpg

To use the scale, you look for visible scratches. A scratch happens when a material makes a permanent mark on another. Scientists look for these marks with their own eyes. You can find a mineral's number by testing it against others. If apatite scratches a stone, but fluorite does not, the stone is between 4 and 5.

Fluorite with Iron Pyrite.jpg
Fluorite with Iron Pyrite.jpg
Sometimes, a soft mineral makes tiny marks that are too small to see. These tiny marks are not counted as real scratches on this scale. This way of testing is very helpful for geologists working outside.
Apatite Canada.jpg
Apatite Canada.jpg

People have been comparing stones for a very long time. Ancient writers like Theophrastus and Pliny the Elder wrote about this. However, the official scale we use today was made by Friedrich Mohs. He was a geologist from Germany. He introduced his scale in his book in 1812.

Gypse Arignac.jpg
Gypse Arignac.jpg
His work gave scientists a clear way to organize minerals. It remains a very famous tool in the world of science today.

The scale uses ten specific minerals as guides. Talc is the very first mineral at number 1. Gypsum is number 2, and calcite is number 3. Fluorite is 4, apatite is 5, and orthoclase feldspar is 6. Quartz is number 7, while topaz is number 8. Corundum is number 9, and diamond is number 10.

Rough diamond.jpg
Rough diamond.jpg
Diamond was the hardest known mineral when the scale was first made. Each number represents a different level of scratch resistance.
Quartz Brésil.jpg
Quartz Brésil.jpg

This scale is very useful in our modern world. Electronic companies use it to test the glass on touch screens. It helps them see if a screen can resist scratches. It is also used in milling to help grind products.

Topaz-120187.jpg
Topaz-120187.jpg
You can think of the scale like a ladder. Each step is higher than the one before it. However, the steps are not equal in size. For example, a diamond is much harder than corundum. The scale shows the order, but it does not show the exact difference in strength.
Corundum-dtn14b.jpg
Corundum-dtn14b.jpg

414 words

The Mohs scale is a qualitative ordinal scale used to characterize the scratch resistance of minerals.

Mohssche-haerteskala hg.jpg
Mohssche-haerteskala hg.jpg
It ranks materials from 1 to 10 based on their ability to scratch one another. In this system, a harder material will scratch a softer material. This scale is a vital tool for geologists working in the field to identify minerals. However, it is not a precise way to predict how materials will behave in industrial settings. While it shows the order of hardness, it does not measure absolute hardness.

To determine a mineral's position, scientists observe how it reacts to contact with other substances. The mechanism involves testing which material can leave a visible mark on another. Technically, a scratch is defined as creating non-elastic dislocations that are visible to the naked eye.

Fluorite with Iron Pyrite.jpg
Fluorite with Iron Pyrite.jpg
Sometimes, a softer material might create microscopic dislocations on a harder material. These tiny marks are permanent and can affect structural integrity. However, they are not considered true scratches for the purposes of the Mohs scale. To find a value, you identify the hardest material a specimen can scratch or the softest that can scratch it.
Apatite Canada.jpg
Apatite Canada.jpg
For example, if a material is scratched by apatite but not by fluorite, its hardness is between 4 and 5.

The scale relies on ten specific reference minerals that are widely found in rocks.

Talc block.jpg
Talc block.jpg
These minerals act as fixed points for comparison. Talc is the softest at level 1, followed by gypsum at 2. Calcite is 3, fluorite is 4, and apatite is 5. The middle of the scale includes orthoclase feldspar at 6 and quartz at 7. Higher values include topaz at 8 and corundum at 9. Diamond defines the top of the scale at 10, as it was the hardest known natural mineral when the scale was designed.
Rough diamond.jpg
Rough diamond.jpg

Humans have used methods of comparing mineral hardness since antiquity. Theophrastus mentioned these methods in his treatise, *On Stones*. Later, Pliny the Elder described similar observations in his work, *Naturalis Historia*. The modern version of this system was introduced in 1812.

Gypse Arignac.jpg
Gypse Arignac.jpg
It was created by Friedrich Mohs, a German geologist and mineralogist. He published his findings in his book, which established the organized scale used by scientists today. His work turned ancient observations into a formal scientific tool.

It is important to understand that the Mohs scale is an ordinal scale, not a linear one. This means the intervals between numbers are not equal in terms of actual strength.

Mohs scale vs absolute hardness.png
Mohs scale vs absolute hardness.png
For instance, corundum (9) is twice as hard as topaz (8) in absolute terms. However, diamond (10) is about four times as hard as corundum. This difference is clearly seen when comparing Mohs values to absolute hardness scales.
Corundum-dtn14b.jpg
Corundum-dtn14b.jpg
The scale shows the relative order, but the actual physical difference grows much larger at the higher numbers.

Testing hardness can be complicated when dealing with mixtures. A rock like granite is a mixture of several minerals rather than a single chemically pure solid.

Quartz Brésil.jpg
Quartz Brésil.jpg
Because granite contains different minerals, its hardness can be misleading. For example, topaz-rich granite contains topaz (8), quartz (7), and orthoclase (6), but also mica (2–4). Different sources might assign granite a hardness between 6 and 7. Even non-mineral substances can be assigned values, such as copper at 2.5–3 or glass at 5.5–6.

Today, the Mohs scale remains highly relevant across many different fields. In geology, it helps identify specimens during field research. In industrial milling, it helps experts choose the right grinding media for a product.

Topaz-120187.jpg
Topaz-120187.jpg
Electronic manufacturers also rely on it. They use the scale to test the resilience of components in consumer electronics. This includes checking the hardness of cover glass for LCD screens or the touch screens on mobile devices. It ensures these surfaces can withstand daily use without being easily damaged.

646 words
🖼️ Images & Media (12)
File:Mohssche-haerteskala hg.jpg
Mohssche-haerteskala hg.jpg
File:Mohs scale vs absolute hardness.png
Mohs scale vs absolute hardness.png
File:Talc block.jpg
Talc block.jpg
File:Gypse Arignac.jpg
Gypse Arignac.jpg
File:Calcite-sample2.jpg
Calcite-sample2.jpg
File:Fluorite with Iron Pyrite.jpg
Fluorite with Iron Pyrite.jpg
File:Apatite Canada.jpg
Apatite Canada.jpg
File:OrthoclaseBresil.jpg
OrthoclaseBresil.jpg
File:Quartz Brésil.jpg
Quartz Brésil.jpg
File:Topaz-120187.jpg
Topaz-120187.jpg
File:Corundum-dtn14b.jpg
Corundum-dtn14b.jpg
File:Rough diamond.jpg
Rough diamond.jpg
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