Chemical reaction | Definition, Equations, Examples, & Types (2024)

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Key People:
Antoine Lavoisier
Claude-Louis Berthollet
Wilhelm Ostwald
Henry-Louis Le Chatelier
Sir Derek H.R. Barton
Related Topics:
acid–base reaction
reaction mechanism
catalysis
oxidation-reduction reaction
ion-exchange reaction

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Top Questions

What are the basics of chemical reactions?

  • A chemical reaction is a process in which one or more substances, also called reactants, are converted to one or more different substances, known as products. Substances are either chemical elements or compounds.
  • A chemical reaction rearranges the constituent atoms of the reactants to create different substances as products. The properties of the products are different from those of the reactants.
  • Chemical reactions differ from physical changes, which include changes of state, such as ice melting to water and water evaporating to vapor. If a physical change occurs, the physical properties of a substance will change, but its chemical identity will remain the same.

Read more below:Basic concepts of chemical reactions

chemical elementLearn about this type of substance, which cannot be decomposed into simpler substances by ordinary chemical processes.

chemical compoundLearn about this type of substance, which can be decomposed into simpler substances by ordinary chemical processes.

What happens to chemical bonds when a chemical reaction takes place?

According to the modern view of chemical reactions, bonds between atoms in the reactants must be broken, and the atoms or pieces of molecules are reassembled into products by forming new bonds. Energy is absorbed to break bonds, and energy is evolved as bonds are made. In some reactions the energy required to break bonds is larger than the energy evolved in making new bonds, and the net result is the absorption of energy. Hence, different types of bonds may be formed in a reaction. A Lewis acid-base reaction, for example, involves the formation of a covalent bond between a Lewis base, a species that supplies an electron pair, and a Lewis acid, a species that can accept an electron pair. Ammonia is an example of a Lewis base. A pair of electrons located on a nitrogen atom may be used to form a chemical bond to a Lewis acid.

chemical bondingLearn about the different types of chemical bonds.

acid–base reaction: Reactions of Lewis acidsLearn about Lewis acid-base reactions.

How are chemical reactions classified?

Chemists classify chemical reactions in a number of ways: by type of product, by types of reactants, by reaction outcome, and by reaction mechanism. Often a given reaction can be placed in two or even three categories, including gas-forming and precipitation reactions. Many reactions produce a gas such as carbon dioxide, hydrogen sulfide, ammonia, or sulfur dioxide. Cake batter rising is caused by a gas-forming reaction between an acid and baking soda (sodium hydrogen carbonate). Classification by types of reactants include acid-base reactions and oxidation-reduction reactions, which involve the transfer of one or more electrons from a reducing agent to an oxidizing agent. Examples of classification by reaction outcome include decomposition, polymerization, substitution, and elimination and addition reactions. Chain reactions and photolysis reactions are examples of classification by reaction mechanism, which provides details on how atoms are shuffled and reassembled in the formation of products.

Read more below:Classifying chemical reactions

acid–base reactionLearn about acid-base reactions.

oxidation-reduction reactionLearn about oxidation-reduction, or redox, reactions.

chain reactionLearn about chain, or self-sustaining, reactions.

Summarize

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chemical reaction, a process in which one or more substances, the reactants, are converted to one or more different substances, the products. Substances are either chemical elements or compounds. A chemical reaction rearranges the constituent atoms of the reactants to create different substances as products.

Chemical reactions are an integral part of technology, of culture, and indeed of life itself. Burning fuels, smelting iron, making glass and pottery, brewing beer, and making wine and cheese are among many examples of activities incorporating chemical reactions that have been known and used for thousands of years. Chemical reactions abound in the geology of Earth, in the atmosphere and oceans, and in a vast array of complicated processes that occur in all living systems.

Chemical reactions must be distinguished from physical changes. Physical changes include changes of state, such as ice melting to water and water evaporating to vapour. If a physical change occurs, the physical properties of a substance will change, but its chemical identity will remain the same. No matter what its physical state, water (H2O) is the same compound, with each molecule composed of two atoms of hydrogen and one atom of oxygen. However, if water, as ice, liquid, or vapour, encounters sodium metal (Na), the atoms will be redistributed to give the new substances molecular hydrogen (H2) and sodium hydroxide (NaOH). By this, we know that a chemical change or reaction has occurred.

Historical overview

The concept of a chemical reaction dates back about 250 years. It had its origins in early experiments that classified substances as elements and compounds and in theories that explained these processes. Development of the concept of a chemical reaction had a primary role in defining the science of chemistry as it is known today.

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The first substantive studies in this area were on gases. The identification of oxygen in the 18th century by Swedish chemist Carl Wilhelm Scheele and English clergyman Joseph Priestley had particular significance. The influence of French chemist Antoine-Laurent Lavoisier was especially notable, in that his insights confirmed the importance of quantitative measurements of chemical processes. In his book Traité élémentaire de chimie (1789; Elementary Treatise on Chemistry), Lavoisier identified 33 “elements”—substances not broken down into simpler entities. Among his many discoveries, Lavoisier accurately measured the weight gained when elements were oxidized, and he ascribed the result to the combining of the element with oxygen. The concept of chemical reactions involving the combination of elements clearly emerged from his writing, and his approach led others to pursue experimental chemistry as a quantitative science.

The other occurrence of historical significance concerning chemical reactions was the development of atomic theory. For this, much credit goes to English chemist John Dalton, who postulated his atomic theory early in the 19th century. Dalton maintained that matter is composed of small, indivisible particles, that the particles, or atoms, of each element were unique, and that chemical reactions were involved in rearranging atoms to form new substances. This view of chemical reactions accurately defines the current subject. Dalton’s theory provided a basis for understanding the results of earlier experimentalists, including the law of conservation of matter (matter is neither created nor destroyed) and the law of constant composition (all samples of a substance have identical elemental compositions).

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Thus, experiment and theory, the two cornerstones of chemical science in the modern world, together defined the concept of chemical reactions. Today experimental chemistry provides innumerable examples, and theoretical chemistry allows an understanding of their meaning.

Basic concepts of chemical reactions

Synthesis

When making a new substance from other substances, chemists say either that they carry out a synthesis or that they synthesize the new material. Reactants are converted to products, and the process is symbolized by a chemical equation. For example, iron (Fe) and sulfur (S) combine to form iron sulfide (FeS). Fe(s) + S(s) → FeS(s) The plus sign indicates that iron reacts with sulfur. The arrow signifies that the reaction “forms” or “yields” iron sulfide, the product. The state of matter of reactants and products is designated with the symbols (s) for solids, (l) for liquids, and (g) for gases.

Chemical reaction | Definition, Equations, Examples, & Types (2024)

FAQs

What is the chemical equation and explain its types with an example? ›

A chemical equation is a representational description of a chemical reaction in which the reactants and products are stated using chemical equations. 6CO2 + 6H2O → C6H12O6 + 6O2 is an example of a chemical equation representing photosynthesis.

What are examples of chemical reactions with equations? ›

List of Common Chemical Reactions
Chemical reactionEquation
Rusting of iron4Fe + 3O2 →2Fe2O3
The reaction of quicklime (CaO) with waterCaO + H2O → Ca(OH)2 Ca(OH)2 is known as slaked lime.
Photosynthesis6CO2 + 6H2O → C6H12O6 + 6O2 (reaction takes place in the presence of sunlight and chlorophyll)
6 more rows

What is chemical reaction and equation answer? ›

A chemical reaction is described by a chemical equation, an expression that gives the identities and quantities of the substances involved in a reaction. A chemical equation shows the starting compound(s)—the reactants—on the left and the final compound(s)—the products—on the right, separated by an arrow.

What are 5 major types of chemical reactions and give examples of each? ›

1 Answer
  • Combination (Synthesis) reaction. A + B → AB.
  • Decomposition reaction. AB → A + B.
  • Displacement reaction. A + BC → AB + C.
  • Double displacement reaction. AB + CD → AD + BC.
  • Combustion reaction. CH4+2O2→CO2+2H2O.
May 23, 2018

What are 4 examples of chemical formulas? ›

List of Chemical Compound Formula
Sl.NoName of the Chemical CompoundFormula
1Acetic acid formulaCH3COOH
2Aluminium hydroxide formulaAl(OH)3
3Acetate formulaCH3COO-
4Acetone formulaC3H6O
93 more rows

What are the 7 types of reactions? ›

Types of Chemical Reactions
  • Combustion reaction.
  • Decomposition reaction.
  • Neutralization reaction.
  • Redox Reaction.
  • Precipitation or Double-Displacement Reaction.
  • Synthesis reaction.

What are 10 examples of reactions? ›

  • Redox reaction. 2S2O2−3+I2→S4O2−6+2I−
  • Synthesis reaction. 9Fe+S8→8FeS.
  • Decomposition reaction. 2H2O→2H2+O2.
  • Dis placement reaction. CH4+Cl2→CH3Cl+HCl.
  • Double displacement. NaCl+AgNO3→NaNO3+AgCl.
  • Acid base. HBr+NaOH→NaBr+H2O.
  • Combustion. C10H8+12O2→10CO2+4H2O.
  • Isomerisation.

What are 20 examples of chemical reactions? ›

Examples of Chemical Change in Everyday Life
  • Burning of paper and log of wood.
  • Digestion of food.
  • Boiling an egg.
  • Chemical battery usage.
  • Electroplating a metal.
  • Baking a cake.
  • Milk going sour.
  • Various metabolic reactions that take place in the cells.

How to write a chemical reaction equation? ›

In a chemical equation, all reactants are written to the left of the yield arrow separated from one another by a plus sign, and products are written to the right of the yield arrow also separated with a plus sign.

Which is an example of a chemical reaction answer? ›

Burning fuels, smelting iron, making glass and pottery, brewing beer, and making wine and cheese are among many examples of activities incorporating chemical reactions that have been known and used for thousands of years.

What is an example of a chemical change? ›

A chemical change results from a chemical reaction, while a physical change is when matter changes forms but not chemical identity. Examples of chemical changes are burning, cooking, rusting, and rotting. Examples of physical changes are boiling, melting, freezing, and shredding.

What is an example of a chemical reaction change in state? ›

NH 3 ( g ) Ammonia + HCl ( g ) Hydrogen chloride → NH 4 Cl ( s ) Ammonium chloride.

What are 5 examples of a chemical equation? ›

Example 1
  • 2Na(s) + O 2(g) → 2Na 2O(s)
  • CH 4(g) + 2O 2(g) → CO 2(g) + 2H 2O(ℓ)
  • AgNO 3(aq) + 2KCl(aq) → AgCl(s) + KNO 3(aq)

How to classify chemical equations? ›

Many chemical reactions may be classified into one or more of five basic types: combination (or synthesis), decomposition, combustion, single replacement, and double replacement. It is important to note, however, that many reactions may classified in more than one way.

How to tell what reaction type? ›

There are 5 main chemical reactions that occur: combination/synthesis, decomposition, single replacement, double replacement, and combustion. Recognizing the type of reaction that is occurring is as simple as looking at the given products and reactants in the chemical equation.

What is an equation and explain its types? ›

An equation is a mathematical statement with an 'equal to' symbol between two expressions that have equal values. For example, 3x + 5 = 15. There are different types of equations like linear, quadratic, cubic, etc.

What is a word equation in chemistry explain with an example? ›

Example word equations

This means that: the reactants are potassium hydroxide and sulfuric acid. the products are potassium sulfate and water. the word equation is: potassium hydroxide + sulfuric acid → potassium sulfate + water.

How to write a chemical equation with an example? ›

  1. Following are different steps of writing a chemical equation:
  2. Step 1: Identify the type of reactant and product.
  3. Step 2: Write the chemical formula for each of the reactants and products.
  4. Step 3: Count the number of each type of atom in reactants and products.
  5. Step 4: Balance the equation:
Jul 3, 2022

What is the simplest form of a chemical equation and give a example? ›

Simplest Formula Examples

A good example is water, which has both the simplest and molecular formula H2O. For larger molecules, the simplest and molecular formula are different, but the molecular formula is always a multiple of the simplest formula. Glucose has a molecular formula of C6H12O6.

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