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Ultraviolet–visible spectroscopy

physical science Maturity 11-13

A special tool uses light to see things.

DU640 spectrophotometer.jpg
DU640 spectrophotometer.jpg
It shines light through a sample. The light tells us what is inside. This helps us learn about tiny bits of stuff. It is like a magic flashlight.
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Can you see the colors?

48 words

Scientists use a tool to study light.

DU640 spectrophotometer.jpg
DU640 spectrophotometer.jpg
This tool shines light through a sample. Some light gets soaked up by the sample. This is called absorption. The tool measures how much light is lost.
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
If there is a lot of stuff in the sample, it soaks up more light. This helps us know how much is there. It can even look at tiny bits of DNA. This tool is very useful in science.

80 words

Scientists use a special tool to study light. This tool is called a UV–Vis spectrophotometer.

DU640 spectrophotometer.jpg
DU640 spectrophotometer.jpg
It works by shining a beam of light through a sample. This light includes ultraviolet light and visible light. Some parts of the light are invisible to our eyes.

As the light passes through, the sample soaks some up. This is called absorption. Some parts of the sample are called chromophores. These are parts that absorb light. When light hits a chromophore, it gives power to an electron. This moves the electron to a higher state.

Simplified UV-vis diagram.png
Simplified UV-vis diagram.png

This tool is very helpful in many fields. It helps chemists find out how much of a substance is in a liquid. This uses the Beer–Lambert law. This law says that more light absorbed means a higher concentration.

Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Scientists also use it to study DNA. It can even help make computer chips by measuring thin films. We must be careful to control things like temperature and pH. These can change how the light is soaked up.

177 words

Scientists use a special tool to study how light interacts with matter. This tool is called a UV–Vis spectrophotometer.

DU640 spectrophotometer.jpg
DU640 spectrophotometer.jpg
It measures light in two specific areas. These are the ultraviolet and visible parts of the light spectrum. Ultraviolet light is invisible to our eyes. Visible light is the part we can see every day. This method is very useful because it is not expensive. It is also easy for scientists to use in many ways. It helps them study both basic science and practical jobs.

How does this tool actually work? It works by passing a beam of light through a sample.

Simplified UV-vis diagram.png
Simplified UV-vis diagram.png
The sample must contain something called a chromophore. A chromophore is a part of a molecule that absorbs light. When a photon, or a tiny bit of light, hits a chromophore, it gives energy to an electron. This moves the electron to a higher energy state. Scientists measure how much light is absorbed or how much is reflected. They can also measure how much light passes through, which is called transmittance.
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG

There are important rules that scientists follow to get the right answers. One main rule is the Beer–Lambert law. This law says that the amount of light absorbed is linked to two things. First, it depends on the concentration of the substance in the liquid. Second, it depends on the path length of the light. If you have more of a substance, it will soak up more light. Scientists use this to find out exactly how much of a chemical is in a solution. They often use a calibration curve to make these measurements very accurate.

This tool is used in many different places around the world. In chemistry, it helps identify different compounds in a sample. It can even be used to monitor changes in DNA. In the semiconductor industry, it measures thin films on a wafer. This helps people make computer chips. Scientists must be careful because many things can change the results. The pH level or the temperature can change the absorption. Even the type of solvent used, like water or ethanol, matters a lot.

Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG

You can think of this like looking through colored glass. If the glass is very dark, it absorbs a lot of light. If the glass is light, more light passes through to your eyes. The spectrophotometer does this with much more detail. It uses specific wavelengths to see things we cannot see alone. It can even detect "stray light," which is light that bounces around where it should not go. By controlling these small details, scientists can understand the tiny building blocks of our world.

451 words

Ultraviolet–visible spectroscopy, often called UV–Vis, is a powerful method used to study how light interacts with matter.

DU640 spectrophotometer.jpg
DU640 spectrophotometer.jpg
This technique focuses on the ultraviolet and visible regions of the electromagnetic spectrum. Scientists use it to identify and quantify specific chemical compounds in many different samples. It is a very popular method because it is relatively inexpensive and easy to use. For a substance to be studied this way, it must contain a chromophore. A chromophore is a specific part of a molecule that is capable of absorbing light energy.

The mechanism of UV–Vis spectroscopy relies on the movement of electrons within a molecule. When a photon, which is a tiny particle of light, hits a chromophore, it provides energy. This energy causes an electron to jump from its current position to a higher energy molecular orbital. This process creates what scientists call an excited state. In organic molecules, there are four common types of these electronic transitions: π–π*, n–π*, σ–σ*, and n–σ*. Transition metal complexes also show interesting behavior because they have incompletely filled d orbitals. These unfilled orbitals allow them to absorb visible light, which is why many metal complexes appear colored.

Simplified UV-vis diagram.png
Simplified UV-vis diagram.png
Scientists measure several different parameters during these experiments. They might measure absorbance (A), which is the amount of light soaked up by the sample. They can also measure transmittance (%T), which is the percentage of light that passes through. Another option is reflectance (%R), which measures light that bounces off the surface. A UV–Vis spectrophotometer works by passing a beam of light through a sample. The instrument then measures how much light is absorbed at every specific wavelength. This data is often presented as a spectrum, showing peaks where absorption is strongest.

A fundamental principle in this field is the Beer–Lambert law. This law provides a mathematical way to link light absorption to the properties of a solution. It states that absorbance is directly proportional to the concentration of the absorbing species. It also depends on the path length, which is the distance the light travels through the sample. The formula is written as A = εLc. Here, ε represents the molar absorptivity, or extinction coefficient. This coefficient is a constant that describes how strongly a substance absorbs light at a specific wavelength. It is a fundamental property that depends on the solvent, temperature, and pressure.

Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Because of this law, UV–Vis is widely used for quantitative analysis. This means scientists use it to find out exactly how much of a substance is present. For example, they can determine the concentration of transition metal ions or biological macromolecules. They can even monitor structural changes in DNA. In the semiconductor industry, the technology is used to measure the thickness of thin films on a wafer. To ensure accuracy, scientists often use a calibration curve. This involves comparing the response of an unknown sample to a known standard.

However, many variables can influence the results of a measurement. The type of solvent used can change the absorption spectrum significantly. For instance, water is often used for water-soluble compounds, while ethanol is used for organic-soluble ones. The pH level and the temperature of the solution also matter. Even the spectral bandwidth of the instrument can change the outcome. Bandwidth is the range of wavelengths the instrument transmits at one time. A narrow bandwidth provides higher resolution and better accuracy. A wider bandwidth allows for faster scanning but may result in lower resolution.

Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Scientists must also watch out for a problem called stray light. Stray light is any light that reaches the detector that was not the specific wavelength selected. This light can be caused by reflections or scattering inside the instrument. Stray light can cause significant errors because it makes the reported absorbance appear lower than it actually is. To prevent this, some scientists use a double monochromator. A single monochromator might only allow measurements up to about 2 Absorbance Units (AU) before stray light becomes a problem. A double monochromator can handle much higher levels, up to about 6 AU.

UV–Vis spectroscopy connects many different scientific disciplines. It is a routine tool in analytical chemistry for identifying functional groups in molecules. Scientists can use the Woodward–Fieser rules to predict the wavelength of maximum absorption, known as λmax, for certain organic compounds. It is also used in biochemistry to study large molecules. By understanding how light and electrons interact, researchers can gain deep insights into the chemical makeup of our world.

754 words
🖼️ Images & Media (3)
File:DU640 spectrophotometer.jpg
DU640 spectrophotometer.jpg
File:Bis(triphenylphosphine) nickel (II) chloride UV-vis.JPG
Bis(triphenylphosphine) nickel (II)...
File:Simplified UV-vis diagram.png
Simplified UV-vis diagram.png
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