Litmus is a special color. 
Litmus is a mix of colors. 

Litmus is a mix of dyes from lichens. 
Blue litmus paper turns red in an acidic liquid. Red litmus paper turns blue in a basic or alkaline liquid. A base is a type of liquid that is the opposite of an acid. If the paper stays purple, the liquid is neutral. This change happens between the pH levels of 4.5 and 8.3.
Scientists get these dyes from many kinds of lichens. Some live in South America. Others live in Norway or California. The word litmus comes from an old word for color moss. 
Litmus is a special mixture of dyes. These dyes come from different kinds of lichens. 
Working with litmus is quite simple to see. Blue litmus paper turns red when it touches an acid. Red litmus paper turns blue when it touches a base or an alkaline liquid. If the paper stays purple, the liquid is neutral. This color change happens between pH levels 4.5 and 8.3.
History tells us that litmus has been used for a long time. The name comes from an Old Norse word, "litmosi." This word means "colour moss" or "colouring moss." 
Many different lichens provide these dyes. Some species like Roccella tinctoria live in South America. Other types like Roccella fuciformis grow in Angola and Madagascar. 
Think of litmus like a tiny color detector. It reacts to the tiny things inside a liquid. Red litmus contains a weak acid. When it meets a base, hydrogen ions react with that base. This creates a conjugate base that looks blue.
Litmus is a water-soluble mixture of various dyes. These dyes are extracted from several different species of lichens. 
The mechanism of litmus relies on specific chemical reactions. Red litmus contains a weak diprotic acid. When this red litmus is exposed to a basic compound, a reaction occurs. The hydrogen ions in the acid react with the added base. This reaction forms a conjugate base from the litmus acid. This new conjugate base has a distinct blue color. Therefore, wet red litmus paper turns blue in an alkaline solution.
Litmus paper reacts differently depending on the substance it touches. Blue litmus paper turns red when it is in an acidic medium. Conversely, red litmus paper turns blue in a basic or alkaline medium. If the paper remains purple, the substance is considered neutral. These color changes occur across a specific pH range from 4.5 to 8.3. You can also use wet litmus paper to test for water-soluble gases. For example, ammonia gas is alkaline and will turn red paper blue.
There are many different species of lichens that provide these dyes. Some sources include Roccella tinctoria from South America. Other species like Roccella fuciformis are found in Angola and Madagascar. Roccella pygmaea grows in Algeria, while Lecanora tartarea is found in Norway and Sweden. Other species include Variolaria dealbata and Ochrolechia parella. Currently, the main sources are Roccella montagnei from Mozambique and Dendrographa leucophoea from California. 
The history of litmus stretches back many centuries. The name comes from the Old Norse word "litmosi." This term translates to "colour moss" or "colouring moss." The word is recorded in a Norwegian law codex from 1316. This document discussed customs and excise duties on furs and pelts. Around the year 1300, the Catalan physician Arnaldus de Villa Nova used litmus. He used the substance to study the properties of acids and bases. 
Chemically, the litmus mixture is quite complex. It has the CAS number 1393-92-6. The mixture contains between 10 and 15 different dyes. These components are likely similar to orcein, but in different proportions. The principal constituent of litmus has an average molecular mass of 3300. The ability to act as an indicator comes from a 7-hydroxyphenoxazone chromophore. A chromophore is the part of a molecule responsible for its color.
It is important to note that other reactions can change the color. Litmus is not always acting as a pH indicator. For instance, chlorine gas can turn blue litmus paper white. This happens because hypochlorite ions are present in the gas. These ions bleach the litmus dye. This specific chemical reaction is irreversible. This means the color change cannot be undone. 
Litmus connects to many different fields of science. It is used in chemistry to identify substances. It also relates to biology through the study of lichens. The study of how these dyes work involves complex molecular structures. Scientists use these properties to understand the chemical balance of various solutions. This makes litmus a fundamental tool in both historical and modern science.
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