This is a special kind of glass. 

Some glass is very strong. 

Borosilicate glass is a special type of glass. It is made by melting silica sand and boric oxide. It also uses soda ash and alumina. 
This glass is very strong. It is harder to break if you drop it. It is also very clear. This means light passes through it easily.
One of its best features is how it handles heat. Most glass changes size when it gets hot. This is called thermal expansion. If glass changes size too fast, it can crack. This is called thermal shock. Borosilicate glass has a very low coefficient of thermal expansion. This is a way to measure how much a material grows when heated. Because it does not grow much, it can handle big changes in heat. 
People use this glass for many things. Scientists use it for beakers and flasks in labs. It is also used for cookware like measuring cups.
Borosilicate glass is a special kind of glass that is very useful. It is much tougher than the regular glass used for windows or drinking cups. This glass is harder to break if you accidentally drop it. It stays very clear and see-through for a long time. It is also safe because it does not leak chemicals into what it holds. 
Making this glass is a careful way of working with heat. To make it, people melt together silica sand and boric oxide. They also add soda ash and alumina to the mix. 
People have been making this glass for a long time. A glassmaker from Germany named Otto Schott first developed it. He worked in a place called Jena during the late 19th century. Because of him, this type of glass was often called Jena glass. 
There are many interesting facts about how this glass behaves. It has a very low coefficient of thermal expansion. This is a scientific way to say the glass does not grow much when it gets hot. It only expands about 3.3 times 10 to the power of negative 6 per Kelvin. This is about one-third the expansion of regular soda-lime glass.
You can find borosilicate glass in many places around you. It is used for laboratory tools like beakers, flasks, and reagent bottles. 

Borosilicate glass is a specialized family of glass known for its extreme durability and resistance to heat. It is defined by its main glass-forming ingredients: silica and boron trioxide. Unlike common soda–lime glass, which is used for windows and bottles, borosilicate is engineered to withstand much harsher conditions. It is harder to break when dropped and maintains high optical clarity over long periods. Most importantly, it is non-toxic and resistant to chemical leaching. This makes it an essential material for science, medicine, and high-end cooking. 
The unique strength of this glass comes from its chemical composition and how it reacts to heat. To manufacture it, makers combine boric oxide, silica sand, soda ash, and alumina. This mixture must be melted at much higher temperatures than ordinary silicate glass. Because of these high temperatures, industrial production requires specialized techniques. Depending on the final shape needed, the molten glass is shaped through methods like floating, molding, or tube drawing. The resulting material is less dense than soda–lime glass, with a density of about 2.23 g/cm³. This lower density is due to the low atomic mass of the boron used in the mix. 
One of the most important features of borosilicate glass is its low coefficient of thermal expansion. This term describes how much a material grows or shrinks when its temperature changes. Borosilicate has a coefficient of approximately 3 × 10⁻⁶ K⁻¹ at 20 °C. This is about one-third the expansion rate of regular soda–lime glass. Because it expands so little, it can withstand significant thermal shock. Thermal shock occurs when a material faces a sudden, large change in temperature. Borosilicate can handle a temperature differential of about 160 °C without fracturing. In contrast, soda–lime glass might shatter if you placed a vessel of boiling water on ice.
Scientists classify borosilicate glasses into different groups based on their oxide composition. The first group is non-alkaline-earth glass, which typically contains over 80% silica and 12–13% boric oxide. This variety has high chemical durability and is used for technical applications like glass tubing and piping. The second group is alkaline-earth borosilicate. These contain up to 5% oxides of alkaline earth metals and alumina. They are slightly softer and have higher thermal expansion rates, ranging from 4.0 to 5.0 × 10⁻⁶ K⁻¹. Finally, there are high-borate glasses. These contain 15–25% boric oxide, which gives them low softening points and excellent electrical insulation. However, these high-borate versions have lower chemical resistance than the other types. 
The history of this material began in the late 19th century in Jena, Germany. A glassmaker named Otto Schott developed the first borosilicate glass there. Because of his work, this material was originally known as Jena glass. Later, in 1915, the Corning Glass Works company introduced a brand called Pyrex. In many English-speaking regions, the name Pyrex became a common term for borosilicate glass. It is important to note that since the 1940s, some Pyrex products have actually been made of soda–lime glass. This means not all Pyrex is true borosilicate, though the name remains famous. 
Because of its stability, borosilicate glass is used in many high-stakes industries. In laboratories, it is the standard for making beakers, flasks, and reagent bottles. It is also used to create pharmaceutical packaging, such as vials and syringes for injectable drugs. This is because its chemical resistance prevents sodium ions from migrating into the medicine. In the medical field, it is used for implantable devices like prosthetic eyes, artificial hip joints, and dental fillings. Even in space exploration and high-power electronics, borosilicate glass plays a vital role. It is used in the gas discharge tubes of sodium-vapor lamps for street lighting. 
Beyond science and medicine, borosilicate glass is a staple in the kitchen and home. It is used for high-quality bakeware, measuring cups, and beverage glassware designed for hot drinks. Many high-quality flashlights also use borosilicate glass for their lenses because it transmits light better than plastic. In the electronics industry, it is used in the semiconductor field to help create microelectromechanical systems (MEMS). It can even be used to pipe coolants through high-power vacuum-tube equipment. Whether it is protecting a street light or holding a chemical reaction, this glass provides a reliable shield against heat and chemicals.
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