- Mendeleev corrected atomic masses to correctly place elements.
- He predicted new elements like Sc, Ga, and Ge with correct properties.
- He later added a zero group for noble gases.
- Co and Ni have similar masses, which can cause confusion about their order.
- Isotopes couldn’t be placed due to different masses.
- Atomic mass gaps are uneven, so new elements couldn’t be predicted.
- Hydrogen's position is unclear—it’s like both alkali metals and halogens.
Definitions [12]
Define periods of modern periodic table.
The horizontal rows are called periods. The table consists of 7 periods, numbered from 1 to 7 from top to bottom.
Define:
Periodic table
The periodic table is a tabular arrangement of elements in horizontal rows, called periods, and vertical columns, called groups, to classify elements and facilitate their systematic study.
Define groups of modern periodic table.
In the modern periodic table, groups (also known as families) are the 18 vertical columns that organize chemical elements by shared properties. Unlike periods, which are horizontal rows representing electron shells, groups are vertical columns of elements with similar chemical properties.
Define the atomic size.
Atomic size is the distance between the center of an atom i.e., from the nucleus to the outermost shell (valence shell) of that atom.
Definition: Elements
Elements are pure substances made up of one type of atom.
Definition: Modern Periodic Table
A tabular arrangement of elements in groups (vertical columns) and periods (horizontal rows), highlighting the regular trends in properties of elements, is called a Periodic Table.
OR
The classification of elements resulting from an arrangement of the elements in an increasing order of their atomic numbers is the modern periodic table.
Definition: Modern Periodic Law
The physical and chemical properties of elements are the periodic functions of their atomic number.
Definition: Periodic Trends
When the properties of elements in a period or a group of the modern periodic table are compared, certain regularity is observed in their variations. It is called the periodic trends in the modern periodic table.
Definition: Valency
The valency of an element is determined by the number of electrons present in the outermost shell of its atoms, that is, the valence electrons.
Definition: Atomic Size (Atomic Radius)
It is the distance between the centre of the nucleus of an atom and its outermost shell.
Definition: Electropositivity
"Electropositivity of an element is the tendency to form a cation by losing its valence electron."
Definition: Electronegativity
"Electronegativity of an atom is the attractive force with which the valence electrons are held."
Theorems and Laws [1]
Law: Modern Periodic Law
Statement:
“The properties of elements are a periodic function of their atomic numbers.”
Explanation / Proof:
- When Mendeleev proposed his periodic table, the structure of the atom was not yet known.
- After the discovery of the electron, scientists began to link atomic number with the number of electrons and protons in an atom.
- In 1913, Henry Moseley used X-ray experiments to show that the atomic number (Z) equals the number of protons in an atom's nucleus.
- This showed that atomic number determines the chemical properties of elements more accurately than atomic mass.
Conclusion:
- Atomic number is the true basis for the classification of elements.
- Thus, the modern periodic table is arranged by increasing atomic number, correcting the issues in Mendeleev’s table.
Key Points
Key Points: Classification of Elements
- Around 1800, only about 30 elements were known, whereas today the number has increased to 118.
- To manage the growing volume of information, scientists began identifying patterns in element properties to facilitate systematic classification.
- Elements were initially grouped as metals and nonmetals, and later, a third category called metalloids was recognised.
Key Points: Modern Periodic Table
- Dobereiner grouped elements in threes (triads) with similar properties and a pattern in atomic masses.
- Newlands found that every 8th element shared similar properties (the Law of Octaves).
- Mendeleev arranged elements by atomic mass and predicted new elements, but couldn’t explain isotopes and rare earths.
- Moseley fixed the flaws by arranging elements by atomic number, forming the modern periodic table.
- Bohr proposed the long-form periodic table based on electron arrangement.
Key Points: Insights into Mendeleev’s Periodic Table
Key Points: Structure of the Modern Periodic Table
- The modern periodic table has 7 periods, 18 groups, and 118 elements.
- It has 4 blocks: s, p, d, and f (with d-block as transition elements).
- A zig-zag line separates metals, metalloids, and nonmetals.
Key Points: Periods and Electronic Configuration
Key Points: Atomic Size
Key Points: Metallic and Non-metallic Characters
Key Points: Gradation in Halogen Family
Concepts [19]
- Classification of Elements
- The Modern Periodic Table
- Insights into Mendeleev’s Periodic Table
- Modern Periodic Law
- Structure of the Modern Periodic Table
- Advantage and Disadvantage of Modern Periodic Table
- Periods and Electronic Configuration
- Shells (Orbits)
- Periodic Trends in the Modern Periodic Table
- Properties of Elements
- Atomic Size
- Metallic and Non-metallic Characters
- Study of Specific Groups in Periodic Table
- Group I (Alkali Metals)
- Group II (Alkaline Earth Metals)
- Gradation in Halogen Family
- Group Zero or 18 Group (Noble Gases)
- Uses of Periodic Table
- Earth and Elements
