Property used by Mendeleev to classify the elements was:

1. Brightness

2. Atomic weight or mass

3. Number of isotopes

4. Lustre

Subtopic:   Evolution of Periodic Table |
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The basic difference between Mendeleev’s Periodic Law (A) and Modern Periodic Law (B) is:

1. A is based on atomic weights while B is based on atomic numbers. 
2. B is based on atomic weights while A is based on atomic numbers.
3. A is based on the number of isotopes while B is based on atomic numbers. 
4. A is based on physical properties while B is based on chemical properties. 

Subtopic:   Evolution of Periodic Table |
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The number of elements in the 6th period of the periodic table is-

1. 32

2. 36

3. 35

4. 33

Subtopic:  Electronic Configuration |
 86%
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The period and group number of the element with Z =114 are:

1. 8th period and 16th group 2. 7th period and 14th group
3. 14th period and 7th group 4. 9th group and 14th period
Subtopic:  Electronic Configuration |
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The atomic number of the element present in the 3rd period and 17th group of the periodic table would be:

1. 18 2. 23

3. 24

4. 17

Subtopic:  Electronic Configuration |
 86%
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The similarity in physical and chemical properties in a group of periodic table is due to the:

1. Same atomic number

2. Same number of valence electrons

3. Same atomic mass

4. Same number of isotopes

Subtopic:  Electronic Configuration |
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The ionic radius indicates the distance between the nucleus and:

1. Outermost shell of an atom.

2. Outermost shell of an ion.

3. Outermost shell of the cation only.

4. Outermost shell of the anion only.

Subtopic:  Atomic Size |
 71%
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 The trend of atomic radius in a period and a group is :

1. Generally decreases from right to left across a period and increases down a group.
2. Generally increases from left to right across a period and decreases down a group.
3. Generally decreases from left to right across a period and increases down a group.
4. Generally remains same from left to right across a period and increases down a group.

Subtopic:  Atomic Size |
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Anions are larger in radius than their parent atoms because:

1. An anion has a fewer number of electrons than its parent atom
2. An anion has the same number of electrons as its parent atom.
3. An anion has a higher effective nuclear charge. 
4. An anion has more electrons than its parent atom

Subtopic:  Atomic Size |
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The energy of an electron in the ground state of the hydrogen atom is 2.18×10-18J.  The ionization enthalpy of atomic hydrogen in terms of J mol-1 is:

1. 2.81 × 10J mol-1

2. 1.31 × 10J mol-1

3. 2.31 × 10J mol-1

4. 1.81 × 10J mol-1

Subtopic:  Ionization Energy (IE) |
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