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Fermium

physical science Maturity 11-13

Fermium is a new kind of stuff.

Enrico Fermi 1943-49.jpg
Enrico Fermi 1943-49.jpg
It was found in a big blast. It was named after a smart man. We use it to learn new things.
Ivy Mike - mushroom cloud.jpg
Ivy Mike - mushroom cloud.jpg
It is very hard to make. Do you want to learn more?

48 words

Fermium is a special kind of matter.

Enrico Fermi 1943-49.jpg
Enrico Fermi 1943-49.jpg
Scientists found it in the dust from a big blast. It was named for a smart man named Enrico Fermi.
Albert Ghiorso ca 1970.jpg
Albert Ghiorso ca 1970.jpg

Making it is very hard. It is made by hitting small pieces of matter with tiny bits called neutrons. This makes the matter grow much heavier.

Ivy Mike - mushroom cloud.jpg
Ivy Mike - mushroom cloud.jpg

Some parts of it stay around for a little while. Other parts go away very fast. We use it to study how the world works.

90 words

Fermium is a man-made chemical element.

Enrico Fermi 1943-49.jpg
Enrico Fermi 1943-49.jpg
Its symbol is Fm. It has the atomic number 100. Scientists first found it in 1952. They found it in the dust from a hydrogen bomb test.
Ivy Mike - mushroom cloud.jpg
Ivy Mike - mushroom cloud.jpg
The element was named after Enrico Fermi. He was a famous leader in nuclear physics.
Albert Ghiorso ca 1970.jpg
Albert Ghiorso ca 1970.jpg

Making fermium is a very difficult task. It is made by hitting lighter elements with neutrons. Neutrons are tiny parts of an atom. This process makes the atoms much heavier. Fermium is the heaviest element we can make this way. It is also the last one we can make in large amounts. Most of it is made in nuclear reactors. One big reactor in Tennessee helps make it.

There are 20 known versions of fermium. We call these versions isotopes. Some isotopes stay around for a long time. One version lasts for 100.5 days. Other versions disappear very fast. Some last for only a few minutes. Because it is hard to make and goes away quickly, we only use it for science research.

183 words

Fermium is a man-made chemical element with the symbol Fm. It has the atomic number 100. This element is part of a group called actinides.

Enrico Fermi 1943-49.jpg
Enrico Fermi 1943-49.jpg
It is a very special discovery in science. Fermium is the heaviest element that can be made by hitting lighter elements with neutrons. Because of this, it is the last element that can be made in large, visible amounts. Scientists have not yet prepared pure fermium metal. It is mostly used for basic scientific research today.
Decay of Fermium-257.PNG
Decay of Fermium-257.PNG

Making fermium is a step-by-step process involving tiny particles. Scientists use a method called neutron bombardment to create it. In this process, they hit lighter elements with neutrons. These neutrons are absorbed by the nucleus of an atom. This makes the atom much heavier.

Elutionskurven Fm Es Cf Bk Cm Am.png
Elutionskurven Fm Es Cf Bk Cm Am.png
This can happen in a nuclear reactor. A major source is the High Flux Isotope Reactor in Tennessee. This reactor is dedicated to making heavy elements. It can produce tiny amounts of fermium. These amounts are often measured in picograms, which are incredibly small.

Fermium has a very interesting history of discovery. It was first seen in the debris from a hydrogen bomb test. This test was called Ivy Mike and happened on November 1, 1952.

Ivy Mike - mushroom cloud.jpg
Ivy Mike - mushroom cloud.jpg
A team led by Albert Ghiorso at the University of California at Berkeley found it. They had to study coral from the Enewetak Atoll to find it. The discovery was kept secret by the U.S. military until 1955. This was because of tensions during the Cold War. Later, the team showed they could make it using civilian ways.

There are many different versions of this element. We call these versions isotopes. Scientists know of 20 different isotopes of fermium.

Albert Ghiorso ca 1970.jpg
Albert Ghiorso ca 1970.jpg
Their weights range from 241 to 260. Some isotopes are very short-lived and disappear quickly. For example, some last only a few milliseconds. The longest-lived version is fermium-257. It has a half-life of 100.5 days. This means it takes about 100 days for half of it to decay. This makes it much more stable than the others.

Understanding fermium helps us learn about the building blocks of our world. It shows how atoms change when they catch neutrons. This is similar to how adding weight to a backpack changes how you move. The way fermium behaves helps scientists study the rules of physics.

ActinideExplosionSynthesis.png
ActinideExplosionSynthesis.png
It also helps us understand how very heavy elements are formed. Even though we cannot use it for everyday tools, it is a key part of science. It acts like a tiny, glowing map of how matter works. Learning about it helps us see the limits of what we can build.

457 words

Fermium is a synthetic chemical element with the symbol Fm and the atomic number 100. It belongs to a group of heavy elements known as actinides.

Enrico Fermi 1943-49.jpg
Enrico Fermi 1943-49.jpg
Fermium is unique because it is the heaviest element that can be formed through the neutron bombardment of lighter elements. This characteristic makes it the final element that scientists can prepare in macroscopic, or visible, quantities. While researchers can produce it, pure fermium metal has not yet been prepared. Because its isotopes are difficult to gather and decay quickly, fermium has no practical uses outside of basic scientific research.
Decay of Fermium-257.PNG
Decay of Fermium-257.PNG

The production of fermium relies on a process called neutron bombardment. In this mechanism, a nucleus of a lighter element absorbs neutrons to increase its mass. This can occur within a nuclear reactor, such as the 85 MW High Flux Isotope Reactor (HFIR) in Tennessee. This reactor is specifically dedicated to producing transcurium elements, which are elements with an atomic number greater than 96. During a typical campaign at Oak Ridge, scientists irradiate tens of grams of curium. This process yields milligram quantities of einsteinium and tiny picogram quantities of fermium.

Elutionskurven Fm Es Cf Bk Cm Am.png
Elutionskurven Fm Es Cf Bk Cm Am.png

Scientists have identified 20 different isotopes of fermium, which are versions of the element with different atomic weights. These weights range from 241 to 260. The isotopes vary greatly in their stability. The longest-lived isotope is fermium-257, which has a half-life of 100.5 days. Other isotopes decay much faster. For example, fermium-255 has a half-life of about 20 hours. Some isotopes are extremely unstable, lasting only a few milliseconds. This rapid decay creates what scientists call the "fermium gap." This gap exists because no accessible fermium isotopes undergo beta minus decay to become mendelevium. Instead, they undergo spontaneous fission, where the nucleus splits apart.

Decay of Fermium-257.PNG
Decay of Fermium-257.PNG

The discovery of fermium is tied to the history of nuclear physics. It was first observed in the debris of the "Ivy Mike" hydrogen bomb test on November 1, 1952.

Ivy Mike - mushroom cloud.jpg
Ivy Mike - mushroom cloud.jpg
A research team led by Albert Ghiorso at the University of California, Berkeley, identified the element. To find it, they had to process contaminated coral from the Enewetak Atoll. Because of Cold War tensions, the U.S. military kept the discovery secret until 1955. The element was named in honor of Enrico Fermi, a pioneer of nuclear physics who developed the first artificial self-sustained nuclear reactor.
Albert Ghiorso ca 1970.jpg
Albert Ghiorso ca 1970.jpg

During the mid-1950s, researchers attempted to create heavier elements using nuclear explosions. They hoped the massive neutron flux of a thermonuclear explosion would allow nuclei to capture more neutrons than a reactor could. The flux in an explosion can reach 10 neutrons per square centimeter within a microsecond. In comparison, the HFIR reactor provides about 5 neutrons per square centimeter per second. Despite these powerful tests, such as the "Hutch" test in 1969, no elements heavier than fermium were discovered.

ActinideExplosionSynthesis.png
ActinideExplosionSynthesis.png
Scientists found that the yield of these elements followed a "saw-tooth" pattern. This means that odd-numbered isotopes were produced in lower amounts because they have higher fission rates.

Collecting the products of these explosions proved to be a massive technical challenge. In atmospheric tests, the debris was spread across wide areas. Scientists tried using airplanes with paper filters to catch fallout, but this only captured a small fraction of the material. In underground tests, the debris was buried under 300 to 600 meters of rock. Even when researchers drilled shafts to help expel material, the concentration of actinides was often lower than expected. In the Hutch test, only 4.0 picograms of fermium-257 were recovered from 10 kilograms of debris. This showed that collecting these rare elements from a blast site is highly inefficient.

Fermium's chemistry is typical for the late actinides in the periodic table. It mostly exists in a +3 oxidation state, which is a way of describing its electrical charge. However, it also has an accessible +2 oxidation state. To isolate the element from other materials, scientists use ion-exchange chromatography. This process uses a cation exchanger and a solution called ammonium alpha-hydroxyisobutyrate. The different elements move through the column at different speeds, allowing researchers to separate the fermium. This specialized chemistry allows scientists to study the fundamental properties of the heaviest reachable elements.

716 words
🖼️ Images & Media (7)
File:Ivy Mike - mushroom cloud.jpg
Ivy Mike - mushroom cloud.jpg
File:Enrico Fermi 1943-49.jpg
Enrico Fermi 1943-49.jpg
File:Albert Ghiorso ca 1970.jpg
Albert Ghiorso ca 1970.jpg
File:Decay of Fermium-257.PNG
Decay of Fermium-257.PNG
File:Elutionskurven Fm Es Cf Bk Cm Am.png
Elutionskurven Fm Es Cf Bk Cm Am.png
File:ActinideExplosionSynthesis.png
ActinideExplosionSynthesis.png
File:Fermium-Ytterbium Alloy.jpg
Fermium-Ytterbium Alloy.jpg
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