Kamis, 18 Oktober 2012

ENERGY AND CHEMICAL REACTION"ENTHALPY" (CH 5)

Enthalpy changeA.PERUBAHAN enthalpy STANDARD (ΔH0)Measurement standard state enthalpy change is at a temperature of 298 K and pressure of 1 atm. The state standard is needed because measurements at different temperatures and pressures will result in different prices enthalpy change pula.Beberapa types of standard enthalpy change, the change in the standard enthalpy of formation (ΔHfo), the standard enthalpy change of decomposition (ΔHdo), and the change in enthalpy standard combustion (ΔHco).a.Perubahan entali establishment of standards (ΔHfo)Standard enthalpy change of formation (standard enthalpy of formation) is the enthalpy change that occurs in the formation of 1 mole of a compound from its elements are most stable at the standard state.Unit peruvbahan standard enthalpy of formation according to the international system (SI) is kilojoul per mole (kJ mol-1).b.Perubahan standard enthalpy of decomposition (ΔHdo)Standard decomposition enthalpy change (standard enthalpy of de composition) refers enthalpy changes that occur in the decomposition of 1 mole of a compound into its elements are most stable at the standard state.Basically, the standard enthalpy change of decomposition as opposed to the standard enthalpy change of formation, then the price would be berlawanya.c.Perubahan standard enthalpy of combustion (ΔHco)Standard combustion enthalpy change (standard entalpy of combustion) is the enthalpy change that occurs in the burning of one mole of a substance completely.Combustion is a reaction of a substance, including the following:1.C (S) + O2 (g) → CO2 (g)2. H2 (g) + ⅟ 2 O2 (g) → H2O (g)3.S (S) + O2 (g) → SO2 (g)B.PENENTUAN enthalpy change1.KALORIMETRIThe enthalpy change is the heat change is measured at constant teknan. Therefore, to determine the enthalpy changes take place in the same way denagn determination done peerubahan heat at constant pressure.The change is a transfer of energy that occurs as a result of perbedaab suhu.jadi, heat pad changes a reaction can be measured by measuring the temperature changes that occur.Measurement of heat changes can be done using a tool called the calorimeterBomb calorimeter (bomb calorimeter) is a specifically designed calorimeter, sehinngga system is really in a state of isolation.Picture: Bomb Calorimeter.In the bomb calorimeter there is a special room called the bomb, crazy filled with oxygen gas at high pressure. Bomb calorimeter in a bertisi immersed in water used to hold the sample combustion reaction.The system in the bomb calorimeter is everything that is in the bomb calorimeter, covering: the reqaksi (bombs), water thermometer, stirrer and others.Combustion reactions that occur in the bomb, it will generate heat and absorbed by the water and the bomb at the same temperature, which are shown by the increase in water temperature. Therefore considered that there is no heat absorbed by the system and in the release into the environment during the reaction, thenqreaksi qbom + q + water = qsisteraor qreaksi qbom + water + q = 0qreaksi = - (q + qbom water)The amount of heat absorbed by the bomb can be calculated by measuring the heat capacity of the bomb.With, Cbom = heat capacity of the bomb (J0C-1 or JK-1)ΔT = change in temperature (° C or K)The amount of heat that causes the temperature change (increase or decrease in temperature) water contained in the calorimeter formulated as:By: m = mass of water in the calorimeter (g)c = specific heat in the calorimeter (J g-1K-1)ΔT = change in temperature (K or ° C)Calorimeter who either have a small heat capacity. That is, the calorimeter is really as an isolated system, so that changes, the heat of reaction in the bombing occurred only affect changes in water temperature or solution in the calorimeter.The reaction takes place in a bomb calorimeter is a reaction that takes place at a constant volume (ΔV = 0), the heat changes that occur in the system will be equal to the change nergi it.ΔU = q + w, where w =-p ΔVPengikuran heat of reaction than the reaction heat of combustion, can be done using a calorimeter at constant pressure. For example, the styrofoam calorimeter which is made from styrofoam cups. Calorimeter of this type generally done to measure the heat of reaction in which the reaction takes place in solution, for example, to measure the heat changes that occur in acid-base neutralization reactions.In a chemical reaction calorimeter takes place at constant pressure (Δp = 0), the heat changes that occur in the system will be equal to the enthalpy change.ΔH = qpIt is therefore considered that there is no heat absorbed by the system and in the release into the environment during the reaction, thenqreaksi + q = q calorimeter systemor qreaksi + q calorimeter = 0qreaksi = - (q + calorimeter qlarutan)If the price of the calorimeter heat capacity is very small, it can be ignored, so that the heat can be considered only changes result in an increase in the calorimeter sahu solution.a, m = mass of the solution in the calorimeter (g)c = specific heat of solution in the calorimeter (J g-1 K-1 or J g-1C-1)ΔT = change in temperature (K or 0C)

C.HUKUM HESS

  chemist named GHHess Russian citizens in 1840 researching the truth that is free of chemical reactions on a journey through several stages of heat will affect the reaction.
Hess's Law is a law in physical chemistry for the expansion of Hess in Hess cycle. This law is used to predict the enthalpy change of the law of conservation of energy (expressed as a state function ΔH).
According to Hess's law, because enthalpy is a state function, the enthalpy change of a chemical reaction is the same, although the measures used to obtain different products. In other words, only the initial state and the final effect on the change in enthalpy, not the steps taken to achieve it.
This causes a change in enthalpy of a reaction can be calculated even can not be measured directly. The trick is to perform arithmetic operations on an equation known enthalpy changes. Equations are arranged so that the sum of all the equations will produce the reaction we want. If an equation is multiplied (or divided) by a number, the enthalpy changes must also be multiplied (divided). If the equation is reversed, then the sign of the enthalpy changes must be reversed as well (ie be-ΔH).
In addition, by using the law of Hess, ΔH value can also be determined by the reduction of the enthalpy of formation of the products minus the enthalpy of formation of the reactants. mathematically





For other reactions in general
  
 Hess's Law states that the overall enthalpy change of a process depends only on the initial state and the end of the reaction, and does not depend on the route or the steps in between. By knowing ΔHf (change in enthalpy of formation) of the reactants and products, it can be predicted enthalpy change of any reaction, according to the formula

 ΔHfP-ΔH ΔH = fR

Enthalpy change for a reaction can also be predicted from the change in enthalpy combustion reactants and products, with the formula

         ΔH =-ΔHcP + ΔHcR

The concept of Hess's law can also be extended to calculate the change in the function of other circumstances, such as entropy and free energy. Both of these applications is useful because magnitudes are difficult or can not be measured directly, so the calculations with Hess's law is used as a way to determine

Kamis, 11 Oktober 2012

Stoichiometric ( CH 4 )

Stoichiometric


Stoichiometry derived from the Greek, from the word meaning stoicheion element and metron meaning measure. Stoichiometric mass relationships antarunsur discussed in a compound (stoichiometric compounds) and antarzat in a reaction (reaction stoichiometry). The measurement of mass in a chemical reaction initiated by Antoine Laurent Lavoisier (1743 - 1794) who found that the chemical reaction does not change the mass (the law of conservation of mass). Furthermore, Joseph Louis Proust (1754 - 1826) discovered that the elements form a compound in a certain ratio (comparative law anyway). Furthermore, in order to construct atomic theory, John Dalton discovered the basic laws of chemistry the third, called the law of multiple comparisons. The third law is the basis of the theory of the first chemical, the atomic theory proposed by John Dalton around 1803. According to Dalton, all matter is composed of atoms, elements consist of a type of atom, whereas compounds composed of different atoms in a certain ratio. However, Dalton has not been able to determine the ratio of atoms - atoms in the compound (chemical formula of the substance). Determination of the chemical formulas of substances can be done thanks to the discovery of Gay Lussac and Avogadro. After the chemical formula of compounds can be determined, then the mass ratio antaratom (Ar) and intermolecular (Mr) can be determined. Knowledge of the relative atomic mass and chemical formula of the compound is a basic chemical calculations.


a. The initial phase of stoichiometric


At the beginning of chemistry, quantitative aspects of chemical change, the chemical reaction stoichiometry, did not get much attention. Even when attention has been given, experimental techniques and tools do not produce correct results.


One example involves the theory of phlogiston. Flogistonis tried to explain the phenomenon of combustion with the term "flammable substance". According to the flogitonis, arson is a release of a substance can be etrbakar (from the burning substance). This substance was later called "phlogiston". Based on this theory, they defined as the release of phlogiston combustion of flammable substances. Mass changes when burning wood fits well with this theory. However, the change in mass of metal when calcined does not match the theory. However flogistonis accept that the two processes are essentially identical. Increasing the mass of calcined metal is a fact. Flogistonis tried to explain this anomaly by stating that phlogiston negative mass.


Philosophers of Flanders January Baptista van Helmont (1579-1644) experimented "willow" famous. He is growing seedlings of willow after measuring the mass of flower pots and soil. Since there is no mass change flower pots and soil when the seed grows, it assumes that the masses were obtained only because of water coming into the ore. He concludes that "the root of all matter is water". Based on the current outlook, hypothesis and experiment are far from perfect, but the theory is a good example of the attitude of the quantitative aspects of chemistry that are growing. Helmont recognize the importance of stoichiometry, and clearly ahead of his time.


In the late 18th century, German chemist Jeremias Benjamin Richter (1762-1807) invented the concept of equivalent (in terms of modern chemistry chemical equivalent) with a reaction carefully acid / base, the quantitative relationship between acids and bases in the neutralization reaction. Equivalent Richter, or what is now called the chemical equivalent, indicating a certain amount of material in the reaction. The neutralization equivalent in regard to the relationship between the number of acid and a base for mentralkannya. Proper knowledge is essential to produce the equivalent of soap and gunpowder good. Thus, such knowledge is very important in practice.


At the same time Lavoisier established the law of conservation of mass, and provide a basis equivalent to the concept of an accurate and creative experiments. Thus, the stoichiometry handle the quantitative aspects of chemical reactions into chemical basic methodology. All the fundamental laws of chemistry, of the law of conservation of mass, the law of comparative law remains until all based gas reaction stoichiometry. Fundamental laws are the basis of the atomic theory, and consistently explained by atomic theory. However, it is interesting to note that the concept of equivalent used before atomic theory was introduced.


b. The relative atomic mass and atomic mass


Dalton recognized that it is important to determine the mass of each atom as mass varies for each type of atom. Atom is very small so it is not possible to determine the mass of a single atom. So he focuses on the relative masses and create a table atomic mass (Figure 1.3) for the first time in human history. In the table, the mass of the lightest element, hydrogen adoption as a standard one (H = 1). Atomic mass is a relative value, meaning that a dimensionless ratio. Although several different atomic masses with modern values, most of the proposed values ​​in the range of compatibility with the current value. This shows that the idea and the experiment right.
Then the Swedish chemist Jons Jakob Berzelius Baron (1779-1848) to determine the mass of the oxygen atom as the standard (O = 100). Because Berzelius get this value based on the analysis of oxide, it has a clear reason to choose oxygen as standard. However, the standard hydrogen is clearly superior in terms of simplicity. Now, after much discussion and modification, carbon standard is used. In this method, the mass of 12C carbon with 6 protons and 6 neutrons is defined as 12.0000. Atomic mass is the mass of an atom relative to this standard. Although carbon has been declared as standard, this can actually be considered as a standard hydrogen is modified.
Atomic mass of almost all the elements very close to integers, ie integer multiples of hydrogen atomic mass. This is a natural kosekuensi fact that the hydrogen atom mass equal to the mass of a proton, which in turn is almost equal to the mass of a neutron, and electron mass is very small to negligible. However, most of the naturally occurring element that is a mixture of several isotopes, and atomic mass depends on the distribution of isotopes. For example, the atomic mass of hydrogen and oxygen is 1.00704 and 15.9994. The mass of the oxygen atom is very close to the value of 16 is a bit smaller.
Molecular mass and formula mass


Each compound is defined enumerated by a chemical formula that indicates the type and number of atoms menyususn compound. The mass formula (or formula mass) is defined as the sum of the atomic masses based on the type and number of atoms in the chemical formula defined. The chemical formula of molecules called molecular formula, chemical formula and mass is called the mass molekul.5 example, the molecular formula of carbon dioxide is CO2, and the molecular mass is 12 + (2x 6) = 44. As the mass of the atom, both mass and molecular mass formula should not be an integer. For example, the molecular mass of hydrogen chloride HCl is 36.5. Even if the type and number of atoms that make up molecules are identical, the two molecules may have different molecular masses when there are different isostop involved.


It is impossible to define molecules for compounds such as sodium chloride. Mass formula for sodium chloride is used instead of the mass molekular.d. Quantity of matter and mole


Quantitative methods most suited to express the amount of matter is the number of particles such as atoms, molecules that make up the material being discussed. However, to calculate the atomic or molecular particles are very small and can not be seen very difficult. Instead of counting the number of particles is directly the number of particles, we can use the mass of a certain number of particles. Then, how does a certain amount of numbers chosen? For


long story short, the number of particles in a 22.4 L of gas at STP (0 ℃, 1ATM) was selected as the standard amount. This number is called Avogadro's number. Name number Loschmidt also proposed to honor the Austrian chemist Joseph Loschmidt (1821-1895) who first with the experiment (1865).


Since 1962, according to the SI (Systeme Internationale) decided bahwam in the world of chemistry, mole is used as a unit of the amount of matter. Defined Avogadro's number of carbon atoms in 12 g 126C and renamed Avogadro constant.


There are several definitions of "mole":


(I) The amount of material that contains a number of particles contained in 12 g of 12C. (Ii) one mole of material that contains Avogadro constant number of particles.


(Iii) A material that contains 6.02 x 1023 particles in one mole.


e. Atomic mass units (sma)


Because the standard atomic mass is the mass of hydrogen Dalton system, standard mass in the right SI 1/12 the mass of 12C. This value is called the atomic mass unit (sma) and is equal to 1.6605402 x 10-27 kg, and D (Dalton) is used as a symbol. Atomic mass is defined as the ratio of the average sma elements with natural isotopic distribution with 1/12 sma 12C.

ATOMIC THEORY DEVELOPMENT & HIGH COORDINATION COMPOUNDS ( CH 2)


From the times of the ancient Greeks to the present, the model and the atomic theory continues to evolve. Through the model and theory of the atom, we can determine the structure of an atom. The development can not be separated from the efforts of scientists such as Democritus, John Dalton, JJ Thomson, Rutherford, Chadwick, ownership, Niels Bohr, Schrodinger, de Broglie and Heisenberg.
1. Atomic Theory Democritus (460 BC-370 BC)Democritus developed a theory of constituent materials. According to Democritus if a matter of a continuous cut would be obtained when the fundamental particles called atoms (Greek: atomos = not divided). This argument was rejected by Aristotle (384-322 BC), who argued that matter is continuous (material can be cut continuously until infinite). Aristotle's theory in favor Empedocles, that matter is made up of fire, water, earth and air. Around the year 1592 - 1655 Gasendi suggested that atom is the smallest part of a substance.2. Dalton Atomic Theory (1803)John Dalton reveals that:a. Atom is the smallest part of a substance.b. Simple spherical atoms are very small, can not be divided, created or destroyed.c. Same element contains the same atoms.d. Atoms have the same kind in every way, while the different atoms have different properties.e. Chemical reactions occur due to the merging and splitting of atoms.f. When atoms combine to form molecules. When atoms are joined together will form the molecular elements, whereas when atoms combine different molecular compounds are formed.Weakness of Dalton's atomic theoryIn the further development of the facts are found that can not be explained by this theory, among others:a. Unable to explain the electrical properties of the material.b. Unable to explain how atoms bond together.c. Dalton atomic model can not explain the difference between a single atom element with another element.These weaknesses can be explained after it was discovered some subatomic particles, such as electrons discovered by Joseph John Thomson in 1900, the discovery of proton particles by Goldstein in 1886.Excess Dalton's atomic theorya. Can explain the Law of Conservation of Mass (Lavoisier law)b. Still can explain Comparative Law (Law Proust)
3. Thomson Atomic TheoryBased on experiments on electrical conductivity through a vacuum tube / tube pengawan charge (discharge tube) or a cathode ray tube. In a cathode tube gas pressure inside the tube can be adjusted via the suction pump (vacuum pump). At sufficiently low pressure and high voltage (several thousand volts), the gas in the tube would glow with light colors depending on the type of gas in the tube (gas neon red, yellow sodium gas). If the gas pressure is reduced, then the area in front of the cathode will be dark. Dark areas will increase if the gas pressure in the tube continues to be reduced, eventually the entire tube to be dark, but the front of the cathode tube glow with a greenish tint.Through the experiments it can be shown that the perpendaran was caused by a radiation emanating from the surface of the cathode towards the anode. Because coming from the cathode, the radiation is called cathode rays. The results of the cathode tube experiment proves that there are negatively charged particles in an atom because the beam can be deflected toward the positive pole of the electric field. The next is a cathode ray particles and negatively charged particles, Thomson was named after the electron


 U.S. researchers have solved a note of the compound with the highest coordination number - number of the series of atoms that are able to bind. These compounds, thorium aminodiboranate, Th (H3BNMe2BH3) 4, has a core of 15 hydrogen atoms bind to separate thorium, breaking the previous calendar notes, which are held by other compounds, one by one.To obtain a high coordination number of an atom is surrounded by a great need of small atoms first, shown in a way that is not filled with atoms of one another. 'Both electronic factor and Steris - compaction - can limit the number of koordinasiannya, "said Gregory Girolami, from the University of Illinois at Urbana-Champaign, one of the team leaders. 'The thorium complex electronic factor and does not limit the amount of coordination is almost entirely dictated by compacting it.'High coordination number of a compound relies on thorium which becomes very large and the very small hydrogen atom. 'What we have done is to describe how to make a compound in which the thorium atoms form hydrogen bonds only with it, "said Girolami. There are only three other thorium compounds that can be set, but one of the coordination number is 12 and the rest of the other two remain unknown. "We also use a coordinating group which is compact and form a compound organic ligand, [so] binding on thorium atom with four hydrogen atoms on the purpose and features increased kestabilitasannya, 'explains Girolami.Thorium compounds representing 15 first coordinate complex (orange: Th, gray - brownish gray: B, purple: N, black: C, blue: H)While the new compounds have no immediate practical application, a high coordination number is very useful, says Girolami, in keeping the metal complex 'in isolation is good', which in turn will improve other properties such as vapor pressure, which is useful once in several applications such as disposition metal from the gas phase.Keith Izod, an expert on chemical coordination at Newcastle University in the UK, said, 'Although the determination of the amount of coordination can only be subjective, 15 coordinate thorium compounds were reported recently - this new press limit the maximum amount of coordination investigated so far.''This is a good structure which may be more than just suspicion than any chemical - although there is nothing wrong with that! Overall this is an interesting piece of work.

Sabtu, 06 Oktober 2012

matter and measurement ( CH 1 )

From the perspective of classical mechanics, chemists describe matter as anything (any thing) that occupies space and has mass.[1] [2]  [3] Without matter the universe would not contain the things that chemists concern themselves with, atoms and all of the things of which atoms serve as building blocks, the stuff of the universe, from stars and planets to the inanimate things of our planet and all its living things, including people, among whom include chemists whose interests center on studying and exploiting for knowledge and human benefit the properties of matter and the ways matter of one form with one set of properties transforms into matter of a different form with a different set of properties, as, for example, when hydrogen atoms and oxygen atoms transform into liquid water, or when liquid water transforms into solid water or vapor.[1] [2]
From the classical chemistry perspective of matter viewed as space-occupying mass, matter includes the subatomic particles that scientists can discern as having physical extension and mass (e.g., protons, neutrons, quarks), electrons, the chemical elements, also called elementary substances — "the substances from which everything tangible is made"[4] — and all the 'compounds' and 'mixtures' chemical elements make up.[5]
Chemists do not ignore the fact that matter has structure both at the subatomic level, and at the atomic and supra-atomic level. They understand that facts at the subatomic level help explain facts at the supra-atomic level, for example, that the electrons of atoms play an essential role in determining chemical reactivity.
From the perspective of classical chemistry, informed by quantum or nuclear physics, all matter consists of chemical elements, either uncombined with other elements (e.g., pure gold), or bonded, each element with itself (e.g., dioxygen (O2), or in various combinations of chemical elements of differing species organized as 'compounds' (e.g., ionic compounds such as sodium chloride [NaCl], covalent molecules such as glucose) or as 'mixtures' (e.g., a solution of glucose in water, an alloy of copper and tin, a mixture of oil and vinegar).
A minimal account of matter from the chemist´s classical perspective requires discussion of the meanings of the terms 'thing' (or 'anything' or 'something' or 'everything'), 'space-occupying', 'mass', 'substance', 'chemical elements', 'molecules', 'ions', 'compounds', 'mixtures', 'properties', and 'chemical reactions'. This article continues with that discussion.
This article will use the words 'object' and 'substance' generically to refer to a 'piece' of matter, something that occupies space and has mass, from a simplest bit or unit of matter, to a tangible sample of matter — matter from a chemist's perspective.
When chemists define matter as anything (any thing) that occupies space and has mass they do not, in conjunction, define thing, presumably because they assume common knowledge of what the word 'thing' means. Indeed, semantic linguists have discovered that the word 'thing' has a primary meaning not definable by the use other words whose definitions do not require knowledge of the definition of 'thing. Any attempt to define 'thing' will require the use of words whose definitions themselves ultimately require knowledge of the definition of the word 'thing'.[6] [7]
Though semantically primitive, 'thing' still has meaning, a meaning a child learns from the way its elders use it, the word's origin going back to the deep-time beginnings of human speech, however pronounced then. A child hears his English-speaking parents frequently uttering 'thing' in reference to what we would call material objects: "This drawer has too many things in it", "Give me that thing before you hurt yourself", "Put your things away".
We would understand, then, that any 'thing' that occupies space and has mass represents matter, providing we know the meaning of the words 'occupy', 'space', and 'mass'. A semanticist might readily define the first two, 'occupy' and 'space', in terms of semantic primitives, but not so readily the third, 'mass', the definition of which we consider in the next section.
Mass gives a measure of the quantity of matter in an object, expressed in kilograms (kg), a basic unit of the International System of Units (SI units). Three related measures of mass exist, referred to as 'inertial mass', 'passive gravitational mass', and 'active gravitational mass'. Physicists have established that the three measures give equivalent values despite their different conceptual bases. For additional information about the relationships among those three measures of mass, see the Addendum subpage of this article.
Three points to note:
1.            An object´s mass gives a measure of the quantity of matter comprising the object;
2.            Objects have the same mass whether measured as inertial, passive, or gravitational mass;
3.            Einstein´s theories of special and general relativity modify the Newtonian concept of mass, which however give a useful measure of mass for most purposes in general chemistry.[8]
4.            Chemistry conceptualizes matter as consisting of distinguishable types of matter, referred to as 'substances'. [10] Examples of substances include such commonly recognized space-occupying masses as water in a glass container, the glass container itself, copper wire, a gem of pure diamond, air enclosed in a balloon, atoms, and molecules.
5.            Different substances have different properties, either physical or chemical properties, depending on whether or not testing for the property involves the formation of another substance or substances. They may also exist in different 'states', or 'phases', solid, liquid, and gaseous the most familiar.
6.            All substances fall under two generic categories, 'pure substances' and 'mixtures'. Chemists classify as the quintessentially pure substances the chemical elements, types of matter composed solely of a single species of atom, such as the copper atoms fashioned into copper wire, the carbon atoms comprising a diamond gem, or iron atoms in a chunk of purified iron. Ninety-four different species of atoms occur naturally on Earth, each collection, or sample, of which that consists solely of atoms of a single species constitutes a pure substance of the type of matter referred to as a chemical element, or elementary substance.
The atoms of two or more different chemical elements potentially can bind to each other, in constant proportions, by any one of a variety of types of chemical bonds, forming in the process new types of pure substances referred to as 'compounds'. Water exemplifies a compound, composed of units of hydrogen and oxygen atoms tightly bonded, in the same proportion per bonded unit particle, in this case, two hydrogen atoms and one oxygen atom per unit particle of compound, expressed in chemical formula as H2O. Chemists have identified the bonds in a unit particle of the water compound as so-called covalent bonds, a type of bond that involves electron sharing between the two hydrogen atoms and the oxygen atom, and refer to the unit particle as a molecule. Chemists express quantities of H2O with a variety of measures of mass, such as kilograms, a basic quantitative unit in the International System of Units (SI units), among six other basic quantitative units, and as moles, defined in terms of the number of atoms of a specified isotope of carbon in a specified quantity of isotope expresed in kilograms.

Chemical Reaction ( CH 3)


A chemical reaction is a process that transforms one set of chemical substances to another. The study of chemical reactions is part of the field of science called chemistry.
Chemical reactions can result in molecules attaching to each other to form larger molecules, molecules breaking apart to form two or more smaller molecules, or rearrangement of atoms within or across molecules. Chemical reactions usually involve the making or breaking of chemical bonds, and in some types of reaction may involve production of electrically charged end products. Reactions can occur in various environments: gases, liquids, solids, or combinations of same: for example, at interfaces.
As shown in the adjacent figure for a general case, the participating reactants typically must surmount a threshold energy or activation energy to initiate the reaction, and intermediates exist briefly before the final products are formed. Changes in bonding of a single occurrence of the transformation is not all that is involved in the energy depicted, which is intended to show the evolution of an entire soup of reactants, intermediates and products. This evolution typically involves generation of heat, physical motion and mixing of all the participants, and the chemical reactions. In the figure, the activation energy on the left indicates the change in all these factors needed to surmount the activation threshold and the energy output on the right indicates the change in these factors when the reaction is complete, being the difference between the starting system with only the reactants themselves and the ending system consisting only of the final products. This overall change in energy may be made to do useful work, or simply be dissipated as heat
Chemical reactions can be either spontaneous and require no input of energy, or non-spontaneousmwhich often require the input of some type of energy such as heat, light or electricity. Classically, chemical reactions are strictly transformations that involve the movement of electrons during the forming and breaking of chemical bonds. A more general concept of a chemical reaction would include nuclear reactions and elementary particle reactions.
In terms of the energy changes that take place during chemical reactions, a reaction may be either exothermic or endothermic ... terms which were first coined by the French chemist Marcellin Berthelot (1827 − 1907). The meaning of those terms and the difference between them are discussed below and illustrated in the adjacent diagram of the energy profiles for exothermic and endothermic reactions.
xothermic chemical reactions release energy. The released energy may be in the form of heat, light (for example, flame), electricity (for example, battery discharge), sound and shock waves (for example, explosion) … either singly or in combinations.
A few examples of exothermic reactions are:
             Mixing of acids and alkalis (releases heat)
             Combustion of fuels (releases heat and light)
Endothermic chemical reactions absorb energy. The energy absorbed may be in various forms just as is the case with exothermic reactions:
A few examples of endothermic reactions are:
             Dissolving ammonium nitrate (NH4NO3) in water (H2O) (absorbs heat and cools the surroundings)
             Electrolysis of water to form hydrogen (H2) and oxygen (O2) gases (absorbs electricity)
             Photosynthesis of chlorophyll plus water plus sunlight to form carbohydrates and oxygen (absorbs light)