Simple Molecules & Covalent Bonds
플레이하며 배우기
이 문제들을 풀어 에너지를 얻은 뒤 낚시하고 탐험하세요. 계정이 필요 없어요.
선생님을 위해: Simple Molecules & Covalent Bonds(Chemistry, CIE)을(를) 위한 바로 쓸 수 있는 수업 슬라이드, 복습 노트, 다이어그램 — 수업에 사용하거나, 학생들이 실시간 게임으로 즐기는 인터랙티브 클래스 활동으로 진행하세요.
수업 노트
Covalent Bonds
- A covalent bond is formed when pairs of electrons are shared between atoms.
- Only non-metal elements participate in covalent bonding.
- Each atom gains a full outer shell of electrons (noble gas configuration).
- Covalently bonded substances may consist of small molecules or giant molecules.
- Dot-and-cross diagrams show the electronic configuration: dots for one atom's electrons, crosses for the other's.
- Electron shells overlap and shared electrons are shown in the overlap region.
H₂ dot-and-cross diagram: single covalent bond formed by one shared pair of electrons.
Single Covalent Bonds
- A single covalent bond involves one shared pair of electrons.
- Examples: H₂ (H–H), Cl₂ (Cl–Cl), H₂O, CH₄, NH₃, HCl.
- In H₂O, oxygen shares one electron with each hydrogen atom, forming two single bonds.
- In CH₄, carbon shares one electron with each of four hydrogen atoms.
- In NH₃, nitrogen shares one electron with each of three hydrogen atoms.
- In HCl, hydrogen and chlorine share one pair of electrons.
H₂O dot-and-cross diagram: oxygen forms a single covalent bond with each hydrogen atom.
Double and Triple Covalent Bonds (Extended)
- Some atoms share two pairs of electrons to form a double bond.
- Some atoms share three pairs of electrons to form a triple bond.
- O₂ has a double bond (O=O) – each oxygen shares two electrons.
- N₂ has a triple bond (N≡N) – each nitrogen shares three electrons.
- Ethene (C₂H₄) has a double bond between the two carbon atoms.
- Carbon dioxide (CO₂) has two double bonds (O=C=O).
O₂ dot-and-cross diagram: a double covalent bond formed by two shared pairs of electrons.
Properties of Simple Molecular Compounds
- Simple molecular compounds have low melting and boiling points.
- They are usually liquids or gases at room temperature.
- As molecule size increases, melting and boiling points increase.
- They have poor electrical conductivity – do not conduct in solid or liquid state.
- They are insulators (e.g., plastic coating on wires).
Explaining Properties (Extended)
- Atoms within molecules are held by strong covalent bonds.
- Between molecules there are weak intermolecular forces.
- Low melting/boiling points are due to weak intermolecular forces requiring little energy to overcome.
- Intermolecular forces are about one tenth as strong as covalent bonds.
- Larger molecules have more electrons, increasing intermolecular forces and raising melting/boiling points.
- Poor conductivity because there are no free ions or electrons to carry charge.
Simple molecular structure of water: strong covalent bonds within each molecule, weak intermolecular forces (dashed) between molecules.
Distinguishing Covalent from Ionic
- Covalent compounds contain only non-metals.
- Ionic compounds contain metal and non-metal.
- In dot-and-cross diagrams, covalent compounds show overlapping shells with shared electrons.
- Ionic compounds show separate ions with square brackets and charges.
- Covalent compounds have low melting points; ionic compounds have high melting points.
Dot-and-cross diagram for sodium chloride: an electron is transferred from sodium to chlorine, forming separate ions shown with square brackets and charges.
슬라이드
연습 문제
무료 미리 보기 — 45개 중 8개 문제. 가입하면 전부 볼 수 있어요.
1.What type of bonding is found in methane?
Easy- ACovalent
- BIonic
- CMetallic
- DHydrogen bonding
2.Which of the following substances has a simple molecular structure?
Easy- ACarbon dioxide
- BCalcium carbonate
- CCopper
- DMagnesium oxide
3.A covalent bond is formed when two atoms:
Easy- AShare a pair of electrons
- BTransfer electrons
- CShare protons
- DAttract via opposite charges
4.When a simple molecular substance melts, what is broken?
Easy- AIntermolecular forces
- BCovalent bonds
- CIonic bonds
- DMetallic bonds
5.Which of the following statements explains why ammonia does not conduct electricity?
Easy- AIt does not contain any free ions or free electrons
- BIts ions are in a fixed position
- CIt has delocalised electrons
- DIt contains free electrons
6.The boiling point of nitrogen is very low even though the bond between atoms in a nitrogen molecule is very strong. Why?
Medium- AOnly weak intermolecular forces need to be overcome
- BThe covalent bonds are broken during boiling
- CNitrogen molecules are very small
- DNitrogen is a gas at room temperature
7.Which of the following elements can form covalent bonds?
Easy- ACarbon
- BSodium
- CCalcium
- DIron
8.Which of the following molecules contains a double bond?
Easy- AOxygen (O2)
- BHydrogen (H2)
- CChlorine (Cl2)
- DMethane (CH4)
기출 문제
이 주제의 기출 문제 연습이 곧 나와요.
곧 출시