Showing posts with label relative atomic masses of some common elements. Show all posts
Showing posts with label relative atomic masses of some common elements. Show all posts

Monday, 11 February 2019


Atomic Mass and Relative Atomic Mass


Atom is the smallest particle which takes part in a chemical reaction.
A molecule is the smallest unit of any substance which can exist independently, and shows all the properties of that substance.
Each molecule is a group of chemically bonded atoms.

Each atom or a molecule has its own characteristic mass.
So, the atomic and molecular masses may be expressed in any unit of mass, i.e., in gram, kilograms, etc.
But the actual mass of a single atom is very small.

An atom of hydrogen (the lightest atom) is
0.000 000 000 000 000 000 000 000 001 673 kg (1.673 × 10–27 kg)
.

It is not possible to measure such small masses even with the help of the most sensitive balance. Such small numbers are not very convenient to write also.

IUPAC accepted in 1961 the atomic mass unit scale to be used for expressing atomic and molecular masses. In this scale of atomic masses, the 12C isotope has been assigned an atomic mass of 12.000000 atomic mass units.

The atomic mass unit is abbreviated as amu, and denoted
by the symbol u, or mu.

Atomic mass unit


Atomic masses are very small. To express atomic masses, a unit called atomic mass unit (abbreviation, amu; symbol, u) is commonly used. The atomic mass unit is defined as follows:

The mass equal to 1/12th of the mass of a 12C atom
is called one atomic mass unit.

1 atomic mass unit = Mass of a 12C atom / 12
Absolute mass of a 12C atom is 1.9924 × 10–23 g.
Therefore,
1 atomic mass unit = 1.9924 × 10–23 g / 12 = 1.66 × 10–24 g = 1.66 × 10–27 kg


Atomic mass (A)


The average mass of an atom of an element is known as its atomic mass.
Atomic mass of an element is designated as A.
Since, atomic mass is actual mass, hence it has the unit of mass, viz., gram, kilogram, atomic mass unit, etc.
The internationally accepted unit for describing atomic mass is atomic mass unit.

The average mass of an atom of an element in atomic mass unit is called its atomic mass.


Relative atomic mass (Ar)


The relative atomic mass (Ar) of an element is defined as the average mass of an atom of the element compared with an atom of 12C taken as 12 u. Thus,

Relative atomic mass of an element (Ar) = Average mass of 1 atom of the
element  /  [(Mass of one 12C atom) / 12]

The relative atomic mass is denoted by Ar.
The relative atomic mass is a pure number, and hence it has no unit.

The relative atomic mass of an element indicates the number of times one atom of that element is heavier than 1/12th of a 12C atom.
For example,
the average relative mass of chlorine is 35.45.
This means that an atom of chlorine on average is (35.45 / 12) times heavier than one atom of 12C.

The names, symbols and relative atomic masses of some common elements are presented in Table (base 12C = 12.000 u)


Element
Relative atomic mass (Ar)
Name
Symbol
Exact
Common value*
Hydrogen
H
1.008
1.0
Carbon
C
12.010
12.0
Oxygen
O
15.999
16.0
Nitrogen
N
14.007
14.0
Chlorine
Cl
35.45
35.5
Sodium
Na
22.99
23.0
Silver
Ag
107.87
108.0
Copper
Cu
63.54
63.5













Note: Magnitude of the relative atomic mass and the atomic mass of an element are the same, but the two differ in units.
• The relative atomic mass has no unit.
• The atomic mass is expressed in the atomic mass units.







.