The Numerous Benefits of Electron Microscopes
Before looking at the many great benefits of electron microscopes, get to know some of the history behind this versatile microscope used in many research projects globally each year. The first electron microscope was built in 1931 by Ernst Ruska, a German academic professor and engineer. The same principles he used still govern the modern day electron microscope. With an understanding that electron wavelengths are shorter than light wavelengths, Ruska applied his knowledge to develop a powerful microscope. He developed an even more powerful electron microscope at the end of the 1930's. He won the Nobel Prize for Physics in 1986.
The electron microscope focuses a beam of energized electrons to examine specimens in nano scales. The specimens do need to be prepared differently to light microscopes, in that they need to be placed in a vacuum chamber with an image being viewed on a screen. The electron microscope relies on electromagnetic or electrostatic lenses, sometimes both. These have a coil of wire wrapped on the outside of a tube, this is a solenoid. The microscope then uses digital displays, software for analysis and a pressure chamber to provide accurate results of the research being carried out.
Electron microscopy samples have to be prepared with care and placed in a microscope vacuum before research can begin. There are numerous techniques used, which are determined based on the analysis and specimen including fixation, cryofixation, embedding, dehydration, sectioning, steining, sputter coating and freeze fracturing or freeze etching. The majority of these techniques need a trained operator due to the manipulation of the specimen, which can cause an artifact or inadvertent change to the specimens structure.
These microscopes offer nanoscale imaging. Images are developed through an interaction between the energetic electrons and the sample carefully prepared in the vacuum chamber. The beam passes through one or more solenoids and is directed down a column and onto the chosen sample. Electron beams are sent and in turn, create a high resolution image.
If you increase voltage you will find an increase in resolution. When the electrons contact the sample, they provide topographical information including surface texture, size, shape, surface particles detected, element composition and more.
There are two types of electron microscopes with the first being discussed is the transmission electron microscope, which can produce images of one nanometer in size. This microscope requires high voltage to increase the speed of the electrons. The black and white image can be viewed on a screen or printed onto a plate.
The second electron microscope is the scanning electron microscope which is used to gather useful topographical information. These use solenoids to pull the beam back and forth over the sample while scanning the surface. Secondary electrons which are emitted from the surface produce the high quality and high resolution image.
The scanning electron microscope is less powerful than the transmission electron microscope, but produces a very high quality, black and white 3D image of the specimen being studied.
These microscopes are advantageous for providing powerful magnification of specimens, which can be used in medical and forensic science, biotechnology, biology and so much more. They are also used in industrial applications, computer chip manufacturing, quality control and more.
These are large pieces of equipment, so you need to ensure you have ample space in your laboratory to house them, keeping them away from other equipment which could result in the machine picking up sounds and vibratos which could negatively impact its performance.
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