Machines sort tiny things by size.
Scientists use a special tool to sort tiny bits.
Big bits cannot fit into the tiny holes. They move through the tube very fast. This makes them finish the race first.
Small bits can go inside the holes. They get stuck in the beads for a while. This makes them finish the race later.
This helps us study things called polymers. We can see how big or small they are. 
It is a very quick way to work. Most tests take less than one hour. 
Scientists use a tool called gel permeation chromatography, or GPC. 
Inside a GPC machine, there is a column. This column is filled with gel beads. These beads have tiny holes called pores.
Large molecules are too big for the pores. They cannot fit inside the beads. They move around the beads and finish the race quickly. Small molecules can enter the tiny pores. They spend more time inside the beads. This makes them finish the race much later.
Scientists use a pump to push liquid through the column. This liquid carries the sample. A detector then sees the molecules as they come out. 
Scientists use a special tool called gel permeation chromatography, or GPC, to study polymers. 
How does this machine actually work? 
This method was developed a long time ago. The technique of size-exclusion chromatography was first made by Lathe and Ruthven in 1955. Later, a man named J.C. Moore from the Dow Chemical Company studied it in 1964. He is the one we can thank for the name gel permeation chromatography. The technology for the columns was licensed to the Waters Corporation. They began selling this technology to scientists in 1964. Today, many different companies make GPC systems and parts.
There are many important facts about how GPC measures things. 
Understanding GPC helps us understand how many different types of materials are made. 
Gel permeation chromatography, or GPC, is a specialized method of size-exclusion chromatography (SEC). 

The mechanism of GPC relies on the physical size of molecules rather than chemical interactions. Unlike other chromatography types, GPC does not depend on physical or chemical attractions between the mobile and stationary phases. Instead, separation happens through the use of porous gel beads packed inside a column.
Different types of molecules interact with the pores in distinct ways. If an analyte is too large for the pores, it is totally excluded. These excluded molecules elute with the free volume outside the particles, known as Vo. Conversely, if an analyte is very small, it may be totally permeating. These small molecules elute with the solvent, which represents the total permeation volume (Vi). Most molecules fall somewhere in between. They are partially retained based on their hydrodynamic volume, which is their radius of gyration. Because each column has specific pore sizes, each column has a specific range of molecular weights it can separate. 
The history of GPC is tied to several key developments in the mid-20th century. The broader technique of size-exclusion chromatography was first developed in 1955 by Lathe and Ruthven. The specific term "gel permeation chromatography" is traced back to J.C. Moore. Moore worked for the Dow Chemical Company and investigated the technique in 1964. Following this, the proprietary column technology was licensed to the Waters Corporation. Waters Corporation subsequently commercialized the technology in 1964. Today, GPC systems and consumables are manufactured by many different companies.
To perform GPC, a specific set of instrumentation is required. 
Calibration is a critical step to ensure the accuracy of the results. GPC measures relative molecular weight, which can be determined with ± 5% accuracy if comparable standards are used. 
GPC offers several significant advantages for laboratory work. It provides a well-defined separation time because there is a final elution volume for all unretained analytes. This makes the process efficient and predictable. Additionally, GPC can provide narrow bands, though this is harder with broad molecular weight samples. Because analytes do not interact chemically with the column, there is a lower chance of analyte loss. Most importantly, GPC is a very fast method. Most polymer samples can be thoroughly analyzed in one hour or less. This speed makes it much more efficient than older methods like fractional extraction or fractional precipitation.
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