This is a special kind of light. 
Some bright lights come from hard glass or stone. 
A solid-state laser is a special kind of light tool. It uses a solid material to make its beam. This material is usually a crystal or a piece of glass. Scientists call this the gain medium. 
To make the laser work, people add tiny bits of metal. These bits are called dopants. Common dopants include neodymium or erbium. These are rare-earth elements. Scientists use them because they work well even when the crystal gets warm. One very common type is called Nd:YAG. 
How does the light start? Most lasers are optically pumped. This means they use light to start the process. A flashlamp or a laser diode can do this. Diode-pumped lasers are very common now. They are very efficient, which means they do not waste much power.
Some lasers can change their color. We call this being tunable. Titanium-doped sapphire is a good example. It can change across a wide range of light. These lasers are used in many ways. They help in medical care and in science labs. Some are even used by the military.
A solid-state laser is a special way to make light. It uses a solid material to create its beam. This material is often a piece of glass or a crystal. Scientists call this the gain medium. 
To make the light, scientists add tiny bits of metal to the host. These bits are called dopants. Common dopants include neodymium, chromium, erbium, thulium, or ytterbium. Many of these are rare-earth elements. These elements work well because they do not react much to heat. 
History shows us how these tools grew over time. The very first material used was a synthetic ruby crystal. 
There are many different types of solid-state lasers today. One common type is called Nd:YAG. This stands for neodymium-doped yttrium aluminum garnet. Some lasers are tunable, which means they can change their color. Titanium-doped sapphire is a great example of a tunable laser. It can change from 660 to 1080 nanometers. 
These lasers help us do many hard jobs. Some use very high power to reach terawatts of energy. 
A solid-state laser is a device that produces light using a solid gain medium. This medium is typically a crystal or a piece of glass. Unlike lasers that use gases or liquids, these rely on a solid structure to function. This technology is vital for many modern fields. It is used in scientific research, medical treatments, and military applications. 
The mechanism of a solid-state laser begins with the composition of its active medium. The medium consists of a solid host material, such as glass or a crystal. Scientists add specific substances called dopants to this host. Common dopants include elements like neodymium, chromium, erbium, thulium, or ytterbium. Many of these are rare-earth elements. These work well because their excited states do not couple strongly with phonons. Phonons are the thermal vibrations within the crystal lattice. This allows the laser to reach its operational threshold at relatively low pumping intensities.
To start the lasing process, the medium must undergo optical pumping. This is the method of providing energy to the dopants. Scientists use either a flashlamp, an arc lamp, or laser diodes to provide this energy. Diode-pumped solid-state lasers are becoming much more common. This shift is happening because the cost of high-power semiconductor lasers has decreased. These diode-pumped systems tend to be much more efficient than those using flashlamps. 
There are many different types of solid-state media used in these devices. One of the most widespread is neodymium-doped yttrium aluminum garnet, or Nd:YAG. Other specialized media include neodymium-doped glass and ytterbium-doped glasses or ceramics. These specific materials are used for extremely high-energy tasks. They can reach power levels in the terawatts and energies in the megajoules. Such high power is necessary for multiple-beam inertial confinement fusion. 
Some lasers are designed to be tunable, meaning they can change their wavelength. This can be achieved by using prisms, gratings, or intracavity etalons inside the laser. Titanium-doped sapphire is a widely used tunable medium. It has a broad tuning range from 660 to 1080 nanometers. Alexandrite lasers are another tunable option. They can tune from 700 to 820 nanometers. Alexandrite lasers can yield higher-energy pulses than titanium-sapphire lasers. This is because the medium has a higher damage threshold and a longer energy storage time.
The history of this technology began with synthetic ruby crystals. The ruby laser was the very first material ever used for lasers. While ruby lasers are still used for some tasks, they are less common today. This is because they have low power efficiencies. At room temperature, they only emit short pulses of light. However, they can emit a continuous train of pulses if they are kept at cryogenic temperatures. Another early milestone was uranium-doped calcium fluoride. In the 1960s, Peter Sorokin and Mirek Stevenson experimented with this at IBM laboratories. They worked in Yorktown Heights, USA. They achieved lasing at 2.5 micrometers shortly after the first ruby laser was created.
Advanced techniques like mode locking allow these lasers to produce ultra-short pulses. This is useful for many different applications. Mode locking can be achieved using saturable absorbers. Two common types of these absorbers are SESAM and SWCNT. Graphene has also been used for this purpose. These materials use a nonlinear optical behavior known as saturable absorption. This process helps the laser create very large-energy, short pulses. 
These lasers are highly versatile in practical use. Passively Q-switched solid-state lasers are particularly useful for specific tasks. They are used for three-dimensional imaging and ranging. They also assist in photoablation and laser-induced breakdown spectroscopy. Because they can be controlled so precisely, they remain essential to modern science and industry. 
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