Showing posts with label Chemistry IX. Show all posts
Showing posts with label Chemistry IX. Show all posts

Class 9 - Chemistry - Glossary (one line definition )

Glossary

  (one line definition ) 

Acidity

The acidity of a base is defined as the number of ionizable hydroxyl groups in its molecule.

Anode

It is an electrode through which electrons enter the external circuit.

Alpha Rays

There are positively charged particles emitted from a radioactive substance. They carry two positive charges and are called helium nuclie.

Analytical Chemistry

It is the branch of chemistry which discusses the analytical methods forgetting information about chemical compounds and chemical processes.

Atomic Number

Number of positively charged particles (protons) present in the nucleus of an atom.

Atomic Size

Average distance between the nucleus of an atom and its outermost electronic shell. Its units are nm or pm.

Arrehenius Acid

It is a chemical compound which gives proton (H+) in water.

Arrehenius Base

It is a chemical compound which gives hydroxide ion (OH-) in water.

Atomic Spectrum

Spectrum of radiations emitted by the excited atoms when they come to the normal state.

Acidic Salts

An acidic salt is obtained when hydrogen atoms present in an acid, are partially replaced by metallic atoms.

Alchemist

A scientist trying to convert cheaper metals into precious metals is called Alchemist and this branch of chemistry is called Alchemy.

Atomic Mass

The mass of an element relative to the unit mass, which is 1/12th o the mass of C-12.

Ampere

The amount of electric current which liberate one electrochemical equivalent of a substance per second during electrolysis of that substance is called ampere.

Biochemistry

It is the study of chemical compounds present in living things.

Balancing of Chemical Equations

Equating the atoms of reactants with those of products.

Beta Rays

These are electrons emitted from a radioactive substance.

Brownian Movement

The free movement of the molecules of gases and liquids is called Brownian movement.

Bronsted Acid

A compound which can donate proton.

Bronsted Base

A compound which can accept proton.

Basicity

The basicity of an acid is defined as the number, of ionizable hydrogen atoms present in its molecule.

Basic Salts

A basic salt is obtained when the hydroxyl groups present in a base are partially replaced by some other groups.

Boiling Point

A temperature at which a liquid changes into gaseous state.

Chemistry

The branch of science, which deals with the composition of matter changes in matter and the laws or principles which govern these changes.

Chemical Equation

The representation of a chemical change in terms of symbols and formulas.

Covalent Solid

A solid in which there exist a covalent bond between atoms.

Covalent Bond

It is the force of attraction that arises between two atoms due to mutual sharing of an electron pair.

Co-Ordinate Covalent Bond

When the shared pair of electrons is provided by one of the bonded atoms, a coordinate covalent bond is formed.

Cohesive Forces

The forces of attraction present between the particles of solid, liquid and a gas.

Cathode Rays

Rays emitted from cathode in the discharge tube.

Colloidal Solution

A solution in which solute particles are bigger than those present in a true solution and which cannot be filtered.

Conductor

A substance which allows electric current to pass through it.

Cathode

It is an electrode through which electrons leave the external circuit.

Concentration of a Solution

The amount of a solute which has been dissolved in a particular amount of a solvent.

Concentrated Solution

A solution, which contains an excess amount of a solute as compared to that of a solvent.

Cell

The vessel containing reacting substances in which transfer of electrons takes place is called cell.

Coulomb

It is unit of electric current. When one ampere electric current is passed for one second the quantity of electric current is one coulomb.

Discharge Tube

A glass tube containing a gas at a very low pressure and provided with electrodes to study the passage of electricity through the gas.

Dipole-Dipole Forces

The forces of attraction which originate due to the difference in electro negativities of the bonded atoms in polar molecules.

Diffusion

The movement of molecules from a higher concentration to a Lowr concentration is called Diffusion.

Dilute Solution

A solution, which contains a small amount of a solute as compared to that of a solvent.

Double Salts

When two typical salts are crystallized together a double salt is formed. The physical properties of the crystals of double salt are different from those of the component salts.

Doberiner's Law of Triads

Dobereiner arranged similar elements in sets of three, called Triads. Atomic mass of the middle atom of a triad was equal to the average of the atomic masses of first and third members.

Degree of Ionization

It is the extent to which an electrolyte ionizes in water.

Experiment

An experiment is an activity performed under suitable conditions with specially designed instruments to get the required information.

Empirical Formula

The formula of a compound which shows the minimum ratio present between the atoms.

Electron Affinity

The amount of energy given out when an electron is absorbed in the outermost electronic shell of all isolated gaseous atom. Its units are KJ/mol.

Electro-Negativity

It is the power of an atom to attract the shared pair of electrons.

Evaporation

The continuous escape of the molecules of a liquid from its surface.

Elastic Collision

When gas molecule collides with each other their total energy does not decrease or increase. This type of collision is called an elastic collision.

Electrolytic-Cell

In a non-spontaneous oxidation-reduction reaction takes place with the help of electrical energy.

Electro-Chemistry

It is that branch of chemistry in which chemical energy is converted into electrical energy or electrical energy is converted into chemical energy.

Electrolytes

When electricity is passed through an ionic compound which is either in the fused state or in the form of aqueous solution, it is decomposed into its constituents. The ionic compound is called an electrolyte.

Electrolysis

The passage of electricity through an electrolyte is called electrolysis.

Electrochemical Series

A list of ions in which they are arranged in the order of their ability to get discharged.

Electroplating

The process of depositing a metal on another metal with the help of electricity.

Exothermic Reaction

Those chemical reactions during which heat is evolved.

Endothermic Reactions

Those chemical reactions in which heat energy is absorbed.

Enthalpy of Reaction

Heat of reaction which takes place at constant pressure.

Formula Mass

Formula mass is the mass of compound relative to the unit mass which is 1/12th of the mass of C-12.

Farad

It is the unit of charge 1 farad = 96500 coulomb.

Fusion

When a solid change into liquid this phenomena is called Fusion.

Heat of Neutralization

The heat given out during a neutralization reaction is called heat of neutralization.

Heat of Reaction

Heat evolved or absorbed during a chemical reaction which takes place at pressure.

Hypothesis

In the light of experiments, the scientists try to explain observations and facts. This tentative explanation is called hypothesis. It is quite possible that after sometime, on the basis of new experiments this hypothesis may be rejected.

Hydrogen Bonding

When a hydrogen atom is attached to any one of fluorine, oxygen and nitrogen atoms, there appears strong dipole forces which are called hydrogen bonding.

Hydrated Ions

Ions of a solute surrounded by water molecules are called hydrated ions.

Ionization

An electrolyte splits up into charged particles upon heating or in its aqueous solution. This process is called Ionization.

Ionic Theory

A theory which explains the process of electrolysis.

Intermolecular Forces

The forces of attraction present between the molecules of a compound.

Ionization Energy

The minimum amount of energy required to remove an electron from the outermost electronic shell of an isolated gaseous atom. Its unit is KJ/mol.

Ionic Bond

A bond formed due to the electrostatic force of attraction between oppositely charged ions.

Ionic Solid

A solid which is made up of ions of opposite charges.

Isotope

Atoms of an element having the same atomic number but different mass number.

Inorganic Chemistry

The study of all elements and their compounds except carbon is called inorganic chemistry.

Industrial Chemistry

The application of chemical knowledge in technology and industry and the preparation of industrial products are called industrial chemistry.

Inference

To deduce results after coordinating the observed facts with integrated scientific knowledge is called inference.

Kinetic Theory

The theory which explains the composition and properties of all the three states of matter.

Lewis Acid

A substance which can accept an electron pair.

Law

A theory when repeatedly gives the same results after experimentation and offers correct explanation of scientific facts it then becomes a law or principle.

Law of Conservation of Mass

Total mass of reactants is equal to that of products during a chemical reaction.

Law of Definite

A compound always contains elements combined together in a fixed ratio by mass.

Law Multiple Proportions

When two elements combine together to give more then one compounds, the different masses of an element, which combine with the fixed mass of the other element, have a simple ratio between them.

Law of Reciprocal Proportions

When two or more elements A and B combine separately with the fixed mass of the third element E the ratio in which they do so may be the same or some simple multiple of the ratio in which these two elements (A and B) combine with each other.

Molar Solution

A solution in which one mole of a solute has been dissolved in one dm3 of solution. It is represented as M.

Metallic Bond

When positively charged metal ions are held together by freely moving electrons, the bond formed is called a metallic bond.

Molecular Solid

A solid which has Vander Waal's forces present between its molecules.

Melting Point

A temperature at which a solid changes into a liquid.

Mass Number

The total number of protons and neutrons present in the nucleus of an atom.

Mendeleev’s Periodic Law

Properties of elements are a periodic function of their atomic masses.

Modern Periodic Law

Properties of elements are a periodic function of their atomic numbers.

Molecular Mass

Molecular mass is the mass of an element or a compound relative to the unit mass, which is 1/12th of the mass of C-12.

Molar Mass

The mass of an element or a compound which contains Avogadro's number particles.

Molecular Formula

The formula of an element or a compound which tells the actual number of atoms present in the molecule of that element or a compound.

Neutralization

Acids and bases react together to form salts and water and in this way they neutralize the properties of each other. This reaction is called Neutralization reaction.

Normal Salts

Salts, which neither have replaceable hydrogen atoms nor hydroxyl groups.

Non-Conductor

A substance through which electric current cannot pass.

Neutron

It is the smallest neutral particle present in the nucleus of atoms. Its mass is slightly more than that of a proton.

Nucleus

Central part of an atom where most of its mass is concentrated. Its size is very small as compared to the size of the atom.

Newland's Law of Octaves

If elements are arranged in the increasing order of their atomic masses every 8th element repeats the properties of the 1st element.

Oxidation

A chemical reaction in which oxygen is added or hydrogen is removed or electrons are lost.

Octet Rule

When an atom has eight electrons in its outer most shell, its is said to be stable and does not combine with other atom to reduce its energy. This is called octet rule.

Organic Chemistry

The branch of chemistry in which we study the compounds of carbon.

Observation

The process of observing natural phenomena with the help of five senses and the scientific equipment.

Orbits

The circular path of an electron around the nucleus.

pH Scale

The negative log of hydrogen ion (H+) concentration present in a solution is called pH. This scale measures the concentration of hydrogen ions present in a solution.

Percentage by Mass

Volume of a solute present in 100cm3 of a solution.

Percentage by Volume

Volume of a solute present in 100 cm3 of a solution.

Physical Chemistry

The branch of chemistry, which deals with the physical properties and physical behaviour of material things.

Prediction

The inference based on observed facts.

Proton

It is the smallest positively charged particle present in all kind of atoms. The mass of this particle is equal to the mass of the hydrogen nucleus (H+).

Positive Rays

Rays produced in the discharge tube, which are traveling in a direction opoposite to the cathode rays.

Reversible Reaction

Chemical reaction, which takes place both directions, forward as well as backward.

Reduction

A chemical reaction in which hydrogen is added or oxygen is removal or electrons are absorbed.

Radioactive Rays

Rays emitted from radioactive element or their compounds, which can cause fogging of the photographic plate.

Strong Acid

An acid which ionizes completely in water.

Strong Base

A base which can ionize completely in water giving excess of hydroxide ions.

Sublimation

Some solids, upon heating, change directly into vapors instead of changing into liquid.

Scientific Method

The method which helps to collect facts on the basis of observations and experiments. Theories and laws are then formulated to explain these facts.

Solute

The substance present in relatively lesser amount in a solution.

Solvent

the substance present in excessive amount in a solution.

Solvated Ions

Ions of a solute surrounded by solvent molecules in a solution are called solvated ion.

Saturated Solution

A solution, which contains the maximum amount of a solute at a particular temperature and which is unable to dissolve further amount of solute in it.

Supersaturated Solution

A solution which contains an amount of solute more than that required for the preparation of a saturated solution at a particular temperature.

Standard Solution

A solution whose concentration is known.

Solubility

The amount o solute in grams which can dissolve in 100 gm of solvent at a particular temperature to give a saturated solution.

Suspension

A mixture in which solute particles do not dissolve in solvent.

Strong Electrolytes

An electrolyte which completely ionize in water.

Transition Elements

Elements having incomplete penultimate (next inner to the outermost) electronic shell.

Theory

If a hypothesis is accepted (after discussion and experimentation) it is called a theory.

Thermo Chemistry

It is the branch of chemistry in which we study the heat changes during a chemical reaction.

Unsaturated Solution

A solution, which can dissolve further amount of a solute at a particular temperature, is called unsaturated solution.

Unified Atomic Mass Unit

Unit of a new scale, which is equal to 1/12th of the mass of C-12.

Voltaic Cell

In a cell a spontaneous oxidation-reduction reaction is used to produce electric current.

Weak Electrolyte

An electrolyte which undergoes partial ionization in water.

Weak Base

A base which ionizes partially in water.

Weak Acid

An acid which ionizes partially in water.

Water of Crystallization

The number of water molecules present in the crystals of a solid.

Class 9 - Chemistry - Differences

Differences

Metals and Non Metals:

Metals

1. Metals have luster shine surface.
2. Metals reflect heat and light.
3. Metals conduct heat and electricity
4. Metals are ductile and can be drawn into wire.

Non-Metals

1. Non-Metals have no luster.
2. Non-Metals usually don't reflect heat and light.
3. Non-Metals do not conduct heat and electricity.
4. Non-Metals are non ductile and cannot be drawn into wire.
5. Non-Metals are non-malleable and can not form sheets.

Homogeneous and Heterogeneous Mixture:

Homogeneous Mixture

1. Those mixtures, which have uniform composition throughout their mass are called homogeneous mixtures.
2. Homogeneous mixture has only one phase through out its mass.
3. Homogeneous mixture are also known as solution.
4. Examples: Salt and water, Sugar and water.

Heterogeneous Mixture

1. Those mixtures, which do not have uniform composition through their mass are called Heterogeneous Mixture.
2. Heterogeneous Mixture has more than one phase through out its mass.
3. Heterogeneous Mixture are not solutions.
4. Examples: Rocks, Soil, Food products.

Molecular and Empirical Formula:

Molecular Formula

1. Formula which shows the actual number of atoms of each element present in a molecule is called Molecular Formula.
2. Molecular Formula shows the structure of compound.
3. Two or more compounds cannot have same Molecular Formula.
4. Molecular Formula = n x Empirical Formula.
5. It represents covalent compounds only.

Empirical Formula

1. formula, which shows the relative ratio of atoms of each element present in a molecule, is called Empirical Formula.
2. Empirical Formula can not show the structure of compound.
3. Two or more compounds can have same Empirical Formula.
4. Empirical Formula = Molecular Formula / n
5. It represent an ionic compound as well as a covalent compound.

Symbol and Formula:

Symbol

1. A symbol is an abbreviation for the chemical name of an element and represents only one atom of the element.
2. It represents one atom of an element.
3. Symbol is written for elements.
4. Examples: Na, Br, Cl, F etc.

Formula

1. Representation of compound in terms of symbols is called formula. It represents one atom of an element.
2. It represents atoms of same or different elements present in one molecule.
3. It represents an ionic compounds as well as a covalent compound.
4. Examples: H2O, NH3 etc.

Gram and Gram Molecule:

Gram

The atomic mass of an element expressed in grams is called gram atomic mass.
2. It is associated with element only.
3. It is the mass of one atomic mole.
4. One gram atom of any substance contains 6.02 x 10(23) atoms. (23 is the power of 10).

Gram Molecule

1. Molecular mass of any element or compound expressed in grams is called gram molecule.
2. It is associated with element and compound.
3. It is the mass of one molecular mole.
4. One gram molecule of any substance contains 6.02 x 10(23) atoms. (23 is the power of 10).

Atom and Molecule:

Atom

1. It is the smallest particle of an element which can enter into a chemical reaction.
2. It is represented by a symbol of the element.
3. It shows the properties of the element.
4. It retains its identity in a chemical reaction.

Molecule

1. It is the smallest particle of a substance which can exist and show all the properties of the substance.
2. It is represented by a molecular formula of the substance.
3. It shows the properties of the substance.
4. It does not retain its identity in a chemical reaction.

Exothermic and Endothermic Reactions:

Exothermic Reaction

1. Those chemical reactions in which heat energy is evolved are called exothermic reactions.
2. In exothermic reactions the enthalpy of products is lower than the reactants. H is therefore negative for an exothermic reaction.
3. During endothermic reaction, the system becomes colder and net potential energy of substance increases.
4. The energy is absorbed during these reactions.
5. The temperature of reaction therefore decreases.

Endothermic Reactions

1. Those chemical reactions in which heat energy is absorbed are called endothermic reactions.
2. In endothermic reactions the enthalpy of reactants is lower than the products. H is therefore positive in endothermic reaction.
3. During endothermic reaction, the system becomes colder and net potential energy of substance increases.
4. The energy is absorbed during these reactions.
5. The temperature of reaction therefore decreases.

Physical and Chemical Properties:

Physical Properties

1. The physical properties of a substance are those characteristics which serve to distinguish it from other substance but do not deal with its ability to undergo chemical changes.
2. These are related to the physical state of matter.
3. Examples: Formation of ice from water, formation of a magnet from ice etc.

Chemical Properties

1. The chemical properties of a substance indicate the ability of a substance to undergo chemical changes.
2. They are related to the chemical change of a substance.
3. Examples: burning of paper, rusting of iron.

Electrolyte and Non-Electrolyte:

Electrolytes

1. Electrolytes conduct electricity in molten or in solution form.
2. These form positive and negative ions when dissolved in water e.g. NaCl form Na+ and Cl- ions when dissolved in water.
3. Chemical changes occur when electric current is passed through the electrolyte.
4. Generally these are ionic or polar covalent compounds.

Non-Electrolytes

1. Non-electrolytes do not conduct electric current in molten or in solution form.
2. These do not form positive and negative ions when dissolved in water e.g. Urea, sugar, glucose etc.
2. No chemical change occurs in them on passing current.
3. Generally these are non polar covalent compounds.
4. Generally these are non polar covalent compounds.

Acid and Base:

Acid

1. Those compounds which provide hydrogen ion (H+) in aqueous solutions are called Acids.
2. An acid is a substance which produces H+ ions in aqueous solution.
3. Acid is a species (a compound or ion) which donates or tends to donate a proton (H+).
4. An acid is a species (molecule or ion) which can accept a pair of electron. An acid is also called an electrophile (electron loving).
5. They have sour taste.
6. Acid turn blue litmus red methyl orange red.

Base

1. Those compounds, which provides hydroxyl (OH-) ion in aqueous solution, are called bases.
2. A base is a substance, which gives (OH-) in aqueous solution.
3. A base is a species, which accepts or tends to accept a proton.
4. A base is a species (molecule or ion) which can donate a pair of electrons. A base is also called a nucleophile (Nucleus loving).
5. Bases have bitter taste.
6. Bases turn red litmus to blue, colorless phenolphthalein to pink and methyl orange to yellow.

Ionic and Covalent Bond:

Ionic Bond

1. Ionic bond is formed by complete transfer of electrons from one atom to another atom.
2. Ionic bond is always formed between different atoms. E.g. NaCl, CaCl2.
3. In ionic bond atoms have very large electro-negativity and ionization energy difference.
4. This bond is usually formed between metals and non-metals.
5. This bond is very strong.
6. As a result of this bond ionic compounds are formed.
7. It is always formed between two different atoms.
8. It is formed when difference of electro-negativity of combining atoms is 1.7 or more.

Covalent Bond

1. Covalent bond is formed by the mutual sharing of electrons between two atoms.
2. Covalent bond may be formed between similar or dissimilar atoms e.g. H2, O2, HCl etc.
3. In covalent bond atoms have very small electro-negativity or ionization energy difference.
4. This bond is usually formed between non-metals only.
5. This bond is comparatively less strong.
6. As a result of this bond covalent compounds are formed.
7. It is formed between similar and different types of atoms.
8. It is formed when difference of electro-negativity of combining atoms is less than 1.7.

Ionic and Covalent Compounds:

Ionic Compounds

1. The ionic compounds are usually solid, hard and brittle.
2. The ionic compounds are good conductors of electricity either in fused state or in the form of aqueous solution.
3. Ionic Compounds have high melting points and boiling points.
4. Ionic compounds have high melting points and boiling points.
5. Covalent compounds are mostly volatile.

Covalent Compounds

1. Covalent compounds exist in all the three states i.e. gas, liquid and solid.
2. A pure covalent compound does not conduct electricity.
3. These have usually low melting and boiling points.
4. These are soluble in water.
5. These are insoluble in water but soluble in organic solvents.

Co-Ordinate Covalent and Covalent Bond:

Co-Ordinate Covalent Bond

1. It is a bond in which the shared electron pair is denoted by one atom only.
2. One atom donates electrons but other has no contribution.
3. Lewis acids and bases always from this bond.
4. It is represented by ->.
5. It is formed by the donation of an electron apir by one of the two bonded atoms.
6. It is formed by the completely filled atomic orbital.

Covalent Bond

1. It is a bond formed by the mutual sharing of electrons.
2. In the shared electron pair both atoms have equal contribution.
3. Lewis acids and bases do not form this bond.
4. It is represented by _.
5. It is formed by the mutual sharing of electrons between atoms.
6. It is formed by the overlap of partially filled atomic orbital.

Polar and Non-Polar Covalent Bond:

Polar Covalent Bond

1. The covalent bond between two atoms having different electro-negativity is called a polar covalent bond.
2. In a polar bond, the shared electron pair is not equally attracted by the bonded atoms.
3. Bonded atoms become slightly charged and acquire partial =ve and -ve charges.
4. It has an ionic character.
5. The bond energy is greater.

Non-Polar Covalent Bond

1. The covalent bond between two atoms having same electro-negativity is called a non-polar covalent bond.
2. In a non polar bond, the shared electron pair is equally attracted by the bonded atoms.
3. Bonded atoms remain electrically neutral and do not acquire partial charges.
4. It has no ionic character.
5. The bond energy is lesser.

Electrolytic and Galvanic or Voltaic Cell:

Electrolytic Cell

1. It is a device for converting electrical energy into chemical energy. It means by passing current through an electrolyte, chemical reaction takes place.
2. It consists of a vessel containing an electrodes and a source of direct current (battery).
3. Example: Electrolysis of aqueous solution of NaCl.

Galvanic or Voltaic Cell

1. It is a device for converting chemical energy into electrical energy. It means spontaneous redox reaction is used for the production of electric current. This cell was prepared by L.Galvani and A.Volts, hence named as Galvanic or Voltaic Cell.
2. It consists of two half-cells. Each half cell consists of an electrodes and the solution with which it is in contact.
3. Example: Daniel Cell-Zn/ZnSO4 and Cu/CuSO4 cell.

Solution and Suspension:

Solution

The size of particles is between 0.1 to 1nm.
2. Particles cannot be seen with low power microscope.
3. It is homogeneous.
4. Particles do not settle down.
5. It is transparent.
6. Components cannot be separated by filtration.

Suspension

1. The size of particles is larger than 1000nm.
2. Particles can be seen by low power microscope.
3. It is heterogeneous.
4. Particles settle down.
5. It is not transparent.
6. Components can be separated by filtration.