ලඝු ගණක චක්කර පොත. - ගණිත වගු - MATHEMATICAL TABLES - lagu potha - ලගු පොත
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මේ ගෙවෙන්නේ ජීවිතේ වටිනාම කාලයයි.
අනුකලනය යනු කලනයේ (Calculus) මූලික ශාඛාවක් වන අතර, එය අවකලනයේ (Differentiation) ප්රතිලෝම ක්රියාවලිය ලෙස සැලකිය හැකිය. සරලව කිවහොත්, අවකලනය මගින් වෙනස් වීමේ සීඝ්රතාවය (slope/rate of change) සොයන අතර, අනුකලනය මගින් එම සීඝ්රතාවයන් එකතු කර මුල් ශ්රිතය (original function) හෝ වක්රයක් යටතේ ඇති වර්ගඵලය (area under a curve) සොයා ගනී.
The p-block elements are a group of elements in the periodic table that belong to groups 13 to 18. These elements have their outermost electrons entering the p-orbital, which gives the block its name. The general electronic configuration of p-block elements is ns² np¹–⁶, depending on the group.
This block includes a wide variety of elements ranging from metals (e.g., aluminum, lead), nonmetals (e.g., nitrogen, oxygen), to metalloids (e.g., silicon, arsenic). Because of this diversity, the p-block shows a wide range of physical and chemical properties.
Groups Covered: 13 to 18
Valence Electrons: 3 to 8 (except helium, which is 1s²)
Properties: Vary widely — includes reactive nonmetals (like halogens), inert noble gases, typical metals, and metalloids.
Oxidation States: Show variable oxidation states, especially in heavier elements.
Reactivity: Nonmetals tend to gain electrons (high electronegativity), while metals tend to lose electrons.
Important Compounds: Form a wide variety of compounds including oxides, halides, and acids.
Group 13 (Boron group): Includes both metals and metalloids.
Group 14 (Carbon group): Includes elements like carbon and silicon, crucial for life and electronics.
Group 15 (Nitrogen group): Important for biological molecules and fertilizers.
Group 16 (Oxygen group or Chalcogens): Includes oxygen and sulfur.
Group 17 (Halogens): Highly reactive nonmetals.
Group 18 (Noble gases): Chemically inert gases with complete octets.
Due to their wide range of behavior and applications, p-block elements are essential in chemistry, industry, and biology.
The halogens are a group of highly reactive nonmetallic elements found in Group 17 (also called Group VIIA) of the periodic table. The name "halogen" comes from Greek words meaning "salt-former," because these elements readily form salts when they react with metals.
Fluorine (F)
Chlorine (Cl)
Bromine (Br)
Iodine (I)
Astatine (At) – a rare and radioactive element
Tennessine (Ts) – a synthetic element with very limited data
Electronic Configuration: ns² np⁵ (7 valence electrons)
Oxidation State: Commonly -1, but can show positive oxidation states in some compounds
Physical State at Room Temperature:
Fluorine: pale yellow gas
Chlorine: greenish-yellow gas
Bromine: reddish-brown liquid
Iodine: violet solid
Astatine: solid (radioactive)
Reactivity: Extremely reactive, especially fluorine; reactivity decreases down the group
Electronegativity: Very high; fluorine is the most electronegative element
Toxicity: Most halogens are toxic and must be handled with care
Strong oxidizing agents
Form halide ions (X⁻) by gaining one electron
React vigorously with metals to form ionic halides (e.g., NaCl)
Form covalent compounds with nonmetals
Participate in displacement reactions (more reactive halogen displaces a less reactive one from its compound)
Chlorine: Water purification, PVC production
Fluorine: Toothpaste (fluorides), Teflon manufacture
Bromine: Flame retardants, photography
Iodine: Antiseptics, nutritional supplements
Astatine and Tennessine: Mostly used in scientific research due to rarity and radioactivity
Halogens are essential yet dangerous elements, known for their strong reactivity and salt-forming ability. Their compounds are widely used in industry, medicine, and daily life, making them a crucial group in chemistry.
Sulfur is a nonmetallic chemical element with the symbol S and atomic number 16. It belongs to Group 16 of the periodic table, also known as the chalcogens. Sulfur is abundant in nature and is essential for life, found in amino acids, vitamins, and minerals.
Appearance: Bright yellow solid in its most common form
State at Room Temperature: Solid
Odor: Pure sulfur is odorless, but sulfur compounds (like hydrogen sulfide) can have a strong, unpleasant smell
Melting Point: ~115°C
Boiling Point: ~445°C
Allotropes: Exists in several forms, the most common being rhombic and monoclinic sulfur
Atomic Number: 16
Electronic Configuration: 1s² 2s² 2p⁶ 3s² 3p⁴
Valency: Usually 2, 4, or 6
Reactivity: Reacts with metals to form sulfides and with oxygen to form sulfur dioxide (SO₂) and sulfur trioxide (SO₃)
Found in volcanic regions, hot springs, and in minerals like gypsum (CaSO₄·2H₂O), pyrite (FeS₂), and galena (PbS)
Also occurs in natural gas and petroleum in the form of hydrogen sulfide (H₂S)
Sulfur is an essential element for all living organisms
Found in amino acids like cysteine and methionine
Plays a vital role in enzymes, proteins, and vitamins (like biotin and thiamine)
Fertilizers: Main use is in the production of sulfuric acid (H₂SO₄), a key industrial chemical
Rubber Industry: Used in vulcanization of rubber
Pharmaceuticals and Cosmetics: Used in skin ointments and medications
Gunpowder and Matches: Component of explosives
Disinfectants and Fungicides: Used in agriculture and sanitation
Sulfur is a versatile, reactive nonmetal that plays a vital role in biology, industry, and environmental chemistry. Despite its simple appearance, it is a key element in many complex processes and products.
Nitrogen is a nonmetallic chemical element with the symbol N and atomic number 7. It is the most abundant gas in Earth’s atmosphere, making up about 78% by volume. Nitrogen belongs to Group 15 of the periodic table, known as the nitrogen group or pnictogens.
State at Room Temperature: Gas
Color and Odor: Colorless, odorless, and tasteless
Boiling Point: -195.8°C
Melting Point: -210°C
Diatomic Molecule: Exists as N₂, with a strong triple bond, making it very stable and inert under normal conditions
Atomic Number: 7
Electronic Configuration: 1s² 2s² 2p³
Valency: Typically 3 or 5, depending on the compound
Reactivity: Although N₂ is inert due to its triple bond, nitrogen forms many reactive compounds like ammonia (NH₃), nitric acid (HNO₃), and oxides of nitrogen (NO, NO₂)
Found primarily as a gas in the atmosphere
Present in soil and organic matter as nitrates, nitrites, and ammonium compounds
Vital part of the nitrogen cycle, which includes nitrogen fixation by bacteria
Essential for all living organisms
A key component of amino acids, proteins, DNA, and RNA
Needed for plant growth and is absorbed from the soil as nitrates or ammonium
Fertilizers: Used to make ammonia (NH₃) via the Haber process, essential for nitrogen-based fertilizers
Cryogenics: Liquid nitrogen is used for freezing and preserving biological samples
Industrial: Used in the production of explosives, dyes, and nitric acid
Food Packaging: Inert gas used to preserve freshness and prevent oxidation
Electronics: Used in semiconductor manufacturing
Nitrogen is a vital, abundant, and versatile element, crucial to both life processes and industrial applications. Although chemically inert as a gas, its compounds are highly reactive and play important roles in agriculture, medicine, and technology.

Carbon is a nonmetallic element with the symbol C and atomic number 6. It belongs to Group 14 of the periodic table, also known as the carbon group. Carbon is one of the most important elements on Earth because it is the building block of all known life and forms more compounds than any other element.
Allotropes: Exists in several forms, including:
Diamond: Hardest natural substance, transparent, excellent insulator
Graphite: Soft, black, slippery, good conductor of electricity
Fullerenes and Graphene: Modern nanomaterials with unique properties
State at Room Temperature: Solid
Color: Varies by allotrope (diamond is colorless, graphite is black)
Atomic Number: 6
Electronic Configuration: 1s² 2s² 2p²
Valency: 4 (tetravalent – can form four covalent bonds)
Reactivity: Forms stable covalent bonds with many elements, including hydrogen, oxygen, nitrogen, and other carbon atoms
Found in the atmosphere as carbon dioxide (CO₂)
Present in fossil fuels (coal, oil, natural gas)
Exists in limestone as calcium carbonate (CaCO₃)
Found in all living organisms in the form of organic molecules
Carbon is the foundation of organic chemistry
Present in carbohydrates, proteins, fats, nucleic acids (DNA/RNA)
Enables the complexity and diversity of life due to its ability to form long chains and rings
Fuels: Coal, oil, and natural gas are carbon-based
Steel industry: Used as coke in blast furnaces
Electronics: Graphite is used in batteries and electrodes
Medical field: Activated carbon used in filtration and poison treatment
Nanotechnology: Carbon nanotubes and graphene used in advanced materials
Carbon is a unique and essential element known for its versatility and ability to form countless compounds. It plays a central role in both living systems and modern industry, making it one of the most studied and useful elements in science.
