Log in Sign up
Back to Discover
💻

Scanning electron microscope

technology Maturity 7-9

A special tool sees tiny things.

Misc pollen.jpg
Misc pollen.jpg
It uses a beam to look. This beam shows small shapes. It makes things look big. You can see tiny bits of life. It is like a super lens.
Gold Spider SEM sample.jpg
Gold Spider SEM sample.jpg
Do you want to see tiny worlds?

48 words

A special tool helps us see tiny things.

Misc pollen.jpg
Misc pollen.jpg
It uses a beam of tiny bits to look at them. This beam hits the surface of a sample. When it hits, it sends back signals. These signals help make a picture.
Gold Spider SEM sample.jpg
Gold Spider SEM sample.jpg
The pictures can look three-dimensional. This makes the small shapes look real. You can see things much bigger than before. It can see things much smaller than a tiny speck. This tool shows us a whole new world.

84 words

A scanning electron microscope, or SEM, helps us see tiny things.

Misc pollen.jpg
Misc pollen.jpg
It works by using a beam of electrons. Electrons are very small particles. The SEM scans this beam across the surface of a sample.
Electron-matter interaction volume and various types of signal generated - v2.svg
Electron-matter interaction volume and various types of signal generated - v2.svg
When the beam hits the sample, it causes changes. These changes create different signals. One signal comes from secondary electrons. These are small particles that pop off the surface. They help show the shape of the sample. Another signal comes from back-scattered electrons. These are electrons that bounce back from deeper parts. They can show us what elements are in the sample. Some SEMs even use X-rays to find specific parts.
Gold Spider SEM sample.jpg
Gold Spider SEM sample.jpg
The pictures look three-dimensional. This is because the tool has a large depth of field. This means it can keep many layers in focus at once. An SEM can make things look 500,000 times bigger. This is much stronger than a light microscope. It can even see things smaller than one nanometer. A nanometer is a very tiny unit of length.

184 words

A scanning electron microscope, or SEM, is a special tool for seeing the tiny world.

Misc pollen.jpg
Misc pollen.jpg
It lets scientists look at the surfaces of very small objects. This tool is much stronger than a regular light microscope. It can make things look more than 500,000 times bigger. Some SEMs can even see details smaller than 1 nanometer. This helps us understand the tiny shapes and parts of things.
Electron-matter interaction volume and various types of signal generated - v2.svg
Electron-matter interaction volume and various types of signal generated - v2.svg

Instead of using light, the SEM uses a focused beam of electrons. This beam scans across the sample in a pattern called a raster scan. When the electrons hit the sample, they interact with its atoms. This creates different signals that the microscope can detect. One common signal comes from secondary electrons. These are small particles that pop off the very top of the surface. They help create a clear picture of the surface shape.

Electron emission mechanisms.svg
Electron emission mechanisms.svg

Other signals provide even more information about the sample. Back-scattered electrons are beam electrons that bounce back from deeper spots. These can show how different elements are spread out in a sample. The beam can also cause the sample to release X-rays. Scientists use these X-rays to identify exactly which elements are present. Because the beam is so narrow, the images look three-dimensional. This is called a large depth of field.

SEM SE vs BE Zr Al.png
SEM SE vs BE Zr Al.png

People have been working on these tools for a long time. Manfred von Ardenne invented a high-resolution SEM in 1937. He wanted to make better images than the tools used at that time. In the same year, Cecil E. Hall built the first emission microscope in North America. Later, groups in Cambridge worked on the technology during the 1950s and 1960s. In 1965, the first commercial SEM called the "Stereoscan" was sold.

First Scanning Electron Microscope with high resolution from Manfred von Ardenne 1937.jpg
First Scanning Electron Microscope with high resolution from Manfred von Ardenne 1937.jpg

Preparing a sample for the SEM can be a hard job. Most SEMs work in a high vacuum, which means there is no air. Because of this, samples must be very dry or frozen. If a sample does not conduct electricity, it might collect a charge. This can cause mistakes in the image. To fix this, scientists often coat the sample in a thin layer of metal like gold.

Gold Spider SEM sample.jpg
Gold Spider SEM sample.jpg
This helps the electrons flow and makes the picture clear.

402 words

A scanning electron microscope, or SEM, is a powerful scientific instrument used to observe the surfaces of tiny objects. Unlike a standard light microscope that uses photons, an SEM uses a focused beam of electrons to create images. This allows scientists to see details at an incredible scale. Some SEMs can achieve resolutions better than 1 nanometer. The magnification range is also much larger than light microscopy. An SEM can magnify an object from 10 times up to more than 500,000 times. This is about 250 times the limit of the best light microscopes.

SEM Zoom.ogv
SEM Zoom.ogv

The mechanism of an SEM relies on the interaction between electrons and the atoms of a sample. The microscope scans a focused electron beam across the specimen in a pattern called a raster scan. When the beam hits the surface, it triggers several different signals. These signals contain data about the topography, or surface shape, and the chemical composition of the material.

Schema MEB (en).svg
Schema MEB (en).svg
The position of the beam is combined with the intensity of these detected signals to construct a digital image. Because the electron beam is so narrow, the resulting micrographs have a large depth of field. This gives the images a characteristic three-dimensional appearance, which is very helpful for studying complex surface structures.
Misc pollen.jpg
Misc pollen.jpg

Different signals provide different types of information about the sample. The most common mode uses secondary electrons (SE). These are low-energy electrons, around 50 eV, that are emitted from the very top few nanometers of the surface. Because they only come from the surface, SE imaging provides very high resolution for seeing fine details.

Electron emission mechanisms.svg
Electron emission mechanisms.svg
Another signal comes from back-scattered electrons (BSE). These are primary beam electrons that are reflected from the sample through elastic scattering. Because they have higher energy, they emerge from deeper within the specimen. The intensity of the BSE signal is strongly related to the atomic number (Z) of the elements in the sample. This allows researchers to see how different elements are distributed across a surface.
SEM SE vs BE Zr Al.png
SEM SE vs BE Zr Al.png

Beyond electrons, the beam can also produce X-rays and light. When the electron beam removes an inner shell electron from an atom, a higher-energy electron moves to fill the gap. This process releases energy in the form of characteristic X-rays. Scientists use techniques like energy-dispersive X-ray spectroscopy (EDS) to measure these X-rays. This allows them to identify specific elements and map their distribution within the sample. Some SEMs can even detect cathodoluminescence, which is the emission of light from the sample.

The history of the SEM is marked by several key developments in the 20th century. While Max Knoll produced early images showing channeling contrast, Manfred von Ardenne is credited with inventing a high-resolution SEM in 1937. He used a finely focused electron beam to scan a small raster. He aimed to surpass the resolution of the transmission electron microscope (TEM) and avoid problems like chromatic aberration. In the same year, Cecil E. Hall built the first emission microscope in North America at the University of Toronto. Later, research groups in Cambridge, including Charles Oatley, made significant progress in the 1950s and 1960s. This work led to the first commercial SEM, the "Stereoscan," which was sold to DuPont in 1965.

First Scanning Electron Microscope with high resolution from Manfred von Ardenne 1937.jpg
First Scanning Electron Microscope with high resolution from Manfred von Ardenne 1937.jpg

Preparing a sample for SEM imaging is a complex process because of the microscope's environment. Most conventional SEMs operate in a high vacuum, which means samples must be completely dry or cryogenically cooled. Biological samples often require chemical fixation using substances like glutaraldehyde to stabilize their structure. To prevent the sample from collapsing during drying, scientists use organic solvents or critical point drying with liquid carbon dioxide.

SEM chamber1.JPG
SEM chamber1.JPG
Furthermore, non-conductive specimens can collect an electrostatic charge when scanned. This charging causes scanning faults and artifacts in the image. To prevent this, researchers often coat non-conductive samples with a thin layer of metal, such as gold, platinum, or iridium.
Gold Spider SEM sample.jpg
Gold Spider SEM sample.jpg

Modern SEM technology has expanded to handle many different types of materials and conditions. Variable pressure or environmental SEMs (ESEM) allow for imaging in low vacuum or even wet conditions. This is useful for samples that cannot survive a high vacuum. There are also specialized instruments that can operate at a wide range of cryogenic or elevated temperatures. In industrial settings, SEMs are used for defect analysis in semiconductor wafers. Some large-scale instruments can even tilt a 300 mm wafer by 45 degrees and rotate it 360 degrees to examine every part of the surface.

775 words
🖼️ Images & Media (14)
File:Misc pollen.jpg
Misc pollen.jpg
File:First Scanning Electron Microscope with high resolution from Manfred von Ardenne 1937.jpg
First Scanning Electron Microscope with...
File:SEM chamber1.JPG
SEM chamber1.JPG
File:ScanningMicroscopeJLM.jpg
ScanningMicroscopeJLM.jpg
File:Schottky-Emitter 01.jpg
Schottky-Emitter 01.jpg
File:Electron-matter interaction volume and various types of signal generated - v2.svg
Electron-matter interaction volume and...
File:Gold Spider SEM sample.jpg
Gold Spider SEM sample.jpg
Pos.tif
File:Schema MEB (en).svg
Schema MEB (en).svg
File:Electron emission mechanisms.svg
Electron emission mechanisms.svg
File:LT-SEM snow crystal magnification series-3.jpg
LT-SEM snow crystal magnification series-3.jpg
File:SEM SE vs BE Zr Al.png
SEM SE vs BE Zr Al.png

+ 2 more

Up Next
💻
Electron microscope
Technology
More to explore

What is Nepedia?

A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.