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Molecular model

physical science Maturity 11-13

Scientists use small toys to show tiny things.

proline model.jpg
proline model.jpg
These toys look like balls and sticks. The balls show tiny bits of matter. The sticks show how they stay together. They help us learn how things work.
anthrax and gfp s.jpg
anthrax and gfp s.jpg
Do you like to build things?

48 words

Scientists use toys to show tiny things.

proline model.jpg
proline model.jpg
These toys use balls and sticks. The balls show tiny bits of matter. The sticks show how they stay together.
anthrax and gfp s.jpg
anthrax and gfp s.jpg
Different colors mean different things. A black ball means carbon. A red ball means oxygen. A blue ball means nitrogen. A white ball means hydrogen. These models help us see how things work. They are fun to build and look at.

74 words

A molecular model is a tool used to show tiny things.

proline model.jpg
proline model.jpg
These models help people learn about chemistry. They show how atoms and molecules work together. Scientists use them to test new ideas.

One popular way to build a model is with balls and sticks. In these models, the balls represent atoms. The sticks represent chemical bonds. A bond is a link that holds atoms together.

proline model.jpg
proline model.jpg
Many kits use different colors for each atom. For example, black balls are carbon. Red balls are oxygen. Blue balls are nitrogen. White balls are hydrogen.

Some models use spheres to show how atoms pack together.

NaCl model s.jpg
NaCl model s.jpg
This can show how crystals are built. Other models use shapes like cubes or pyramids.

Today, we also use computers to make models.

anthrax and gfp s.jpg
anthrax and gfp s.jpg
Computers can show very large and complex shapes. Some models are even made using 3D printers. Others are etched inside blocks of glass.
Model of the E. coli DNA polymerase beta-subunit, engraved in glass.jpg
Model of the E. coli DNA polymerase beta-subunit, engraved in glass.jpg
These tools help us see the invisible world.

178 words

A molecular model is a physical tool used to represent atoms and molecules.

proline model.jpg
proline model.jpg
These models help people understand chemistry and test new ideas. Scientists use them to see how tiny things work. Some models are made of math on a computer. These are called molecular graphics. Other models are real objects you can touch. They show how atoms are arranged in space. This helps students learn about structures they cannot see with their eyes.

There are many ways to build these models. One popular way is the ball-and-stick model.

proline model.jpg
proline model.jpg
In this version, balls represent atoms and sticks represent chemical bonds. The bonds are the links that hold atoms together. Some sticks are rigid, while others are flexible like springs. Flexible bonds allow the model to show different angles. This helps show how molecules can move or bend.
Ruby model.jpg
Ruby model.jpg
Other models use spheres to show how atoms pack tightly together.
NaCl model s.jpg
NaCl model s.jpg
This is useful for seeing how crystals like salt are built.

People have been thinking about these shapes for a long time. In the 1600s, Johannes Kepler studied how spheres pack together. He looked at the symmetry of snowflakes. Later, in 1860, August Wilhelm von Hofmann made the first physical molecular model.

Molecular Model of Methane Hofmann.jpg
Molecular Model of Methane Hofmann.jpg
His model for methane was not quite right. It did not show the correct 3D shape. Later, Jacobus Henricus van 't Hoff and Joseph Le Bel introduced stereochemistry. This is the study of chemistry in three dimensions. Van 't Hoff built models that showed the true 3D properties of carbon.

Many specific details help make these models accurate. In many kits, colors tell you which atom is which. Black is for carbon, red is for oxygen, and blue is for nitrogen.

proline model.jpg
proline model.jpg
White is used for hydrogen. Some scientists, like Arnold Beevers, made very precise models using stainless steel rods.
Ruby model.jpg
Ruby model.jpg
These were used to show the structure of a ruby. Other researchers used the Nicholson approach to build large biological models.
peptide model s.jpg
peptide model s.jpg
Building a single protein model could take a whole month!

Today, technology has changed how we see molecules. We can now use computers to make models of huge proteins.

anthrax and gfp s.jpg
anthrax and gfp s.jpg
We can even use 3D printers to create them. Some companies use lasers to etch protein shapes inside glass blocks.
Model of the E. coli DNA polymerase beta-subunit, engraved in glass.jpg
Model of the E. coli DNA polymerase beta-subunit, engraved in glass.jpg
Computers can also run math programs to predict how molecules behave. These programs can calculate bond lengths and charges. While big calculations can be hard for normal computers, quantum computers might help in the future.

440 words

A molecular model is a physical representation of an atomistic system. These models represent molecules and the processes they undergo. They are vital tools for understanding the complexities of chemistry. Scientists use them to generate and test new scientific hypotheses. Molecular modeling refers to the creation of mathematical models for molecular behavior. When these models are shown visually, it is called molecular graphics. Most molecular models contain one or more explicit atoms. They often neglect the nuclear structure of these atoms. The electronic structure is also frequently omitted unless it helps explain a specific function.

proline model.jpg
proline model.jpg

There are several distinct reasons why scientists create these models. They serve as pedagogic tools for students learning about atomistic structures. They also act as objects to test theories, such as the structure of DNA. Some models function as analogue computers to measure distances and angles in flexible systems. Beyond science, they can be aesthetically pleasing objects that sit between art and science. The construction of these physical models is often a creative and bespoke process. Many are carefully crafted in the workshops of science departments.

anthrax and gfp s.jpg
anthrax and gfp s.jpg

Physical modeling follows many different approaches. The ball-and-stick model is a very popular method. In this system, balls represent atoms and sticks represent chemical bonds. Early versions used wooden balls with drilled holes for rods. Carbon can be shown as a sphere with four holes at tetrahedral angles. To allow for different angles, scientists use flexible bonds. These were once helical springs but are now usually made of plastic. This flexibility allows models to approximate double and triple bonds.

proline model.jpg
proline model.jpg

Another major type is the sphere-based or space-filling model. These models represent atoms as spheres to show how they pack together. This is very useful for studying crystallography and solid-state inorganic structures. For example, sodium chloride (NaCl) can be described as close-packed chloride ions. These ions form a face-centered cubic lattice. The sodium ions then sit in the octahedral holes. This method helps visualize how different sized spheres create specific cubic structures.

NaCl model s.jpg
NaCl model s.jpg

Skeletal models provide a different way to view molecular connections. In these models, atoms are represented simply as points at the intersections of rods. The valences are represented by rods or tubular connectors. André Dreiding introduced a kit in the late 1950s that used valence spikes. These spikes click into tubes to form a bond. This method is widely used in organic chemistry departments. Some modern versions use inexpensive plastic with protuberances. The flexibility of the plastic allows for the creation of distorted geometries.

peptide model s.jpg
peptide model s.jpg

The history of molecular modeling spans several centuries. In the 1600s, Johannes Kepler speculated on the symmetry of snowflakes. He studied how spherical objects like fruit could pack together. In 1860, August Wilhelm von Hofmann is credited with the first physical molecular model.

Molecular Model of Methane Hofmann.jpg
Molecular Model of Methane Hofmann.jpg
However, his methane model depicted an incorrect geometry. It did not yet account for the importance of stereochemistry. Later, Jacobus Henricus van 't Hoff and Joseph Le Bel introduced three-dimensional chemistry. Van 't Hoff built tetrahedral models to represent carbon properties. This helped establish the field of stereochemistry.
Molecular Model of Methane Hofmann.jpg
Molecular Model of Methane Hofmann.jpg

Modern technology has introduced highly advanced modeling methods. Scientists can now use rapid prototyping to make complete single-piece models. These are often made of plaster or starch. Some companies use subsurface laser engraving to etch proteins inside glass blocks.

Model of the E. coli DNA polymerase beta-subunit, engraved in glass.jpg
Model of the E. coli DNA polymerase beta-subunit, engraved in glass.jpg
Computers also use mathematical programs to predict molecular properties. These programs can calculate bond lengths, polarity, and charge distribution. However, as more atoms are added, the number of calculations grows quadratically. This means a molecule with four times the atoms takes 16 times longer to calculate. For very complex tasks like drug design, scientists often require supercomputers or quantum computers.
anthrax and gfp s.jpg
anthrax and gfp s.jpg

645 words
🖼️ Images & Media (7)
File:Molecular Model of Methane Hofmann.jpg
Molecular Model of Methane Hofmann.jpg
File:NaCl model s.jpg
NaCl model s.jpg
File:proline model.jpg
proline model.jpg
File:Ruby model.jpg
Ruby model.jpg
File:peptide model s.jpg
peptide model s.jpg
File:anthrax and gfp s.jpg
anthrax and gfp s.jpg
File:Model of the E. coli DNA polymerase beta-subunit, engraved in glass.jpg
Model of the E. coli DNA polymerase...
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