📚 Covalent Bonding – Types of Covalent Structures & Their Properties | 共价键 – 共价结构的类型与性质
In this revision article, we break down how atoms share electrons to form covalent bonds, and why the physical properties of covalent substances—such as melting point, electrical conductivity, and solubility—depend entirely on the type of macromolecular or molecular structure they adopt.
在这篇复习文章中,我们深入讨论原子如何通过共用电子形成共价键,以及共价物质的物理性质(如熔点、导电性和溶解性)如何完全取决于其宏观分子或分子结构类型。
1. The Basics of Covalent Bonding | 共价键的基础
A covalent bond is formed when two non-metal atoms share a pair of electrons. Each shared pair provides both atoms with a full outer shell, achieving a stable noble gas configuration. This sharing can involve one, two, or three electron pairs, giving single, double, or triple bonds respectively.
共价键是两个非金属原子共用一对电子时形成的。每对共用的电子使两个原子都获得稳定的惰性气体电子构型。这种共用可以涉及一对、两对或三对电子,分别形成单键、双键或三键。
- Single bond: one shared pair (e.g., Cl – Cl, H – H).
- Double bond: two shared pairs (e.g., O = O, C = O).
- Triple bond: three shared pairs (e.g., N ≡ N).
- 单键:共用一对电子(例如 Cl – Cl、H – H)。
- 双键:共用两对电子(例如 O = O、C = O)。
- 三键:共用三对电子(例如 N ≡ N)。
σ bond and π bond: first overlap → sigma; lateral overlap → pi | σ键和π键:头碰头重叠 → σ键;肩并肩重叠 → π键
When discussing the types of covalent structures, we must distinguish between simple molecular structures and giant covalent structures (macromolecular networks). The difference lies in the extent of the bonding.
讨论共价结构类型时,我们必须区分简单分子结构和巨型共价结构(大分子网络)。区别在于成键的规模与范围。
2. Simple Molecular Structures | 简单分子结构
Substances like H₂O, CO₂, CH₄, and I₂ consist of small, discrete molecules. The covalent bonds within each molecule are very strong, but the forces of attraction between separate molecules—called intermolecular forces (van der Waals’ forces, permanent dipole-dipole, or hydrogen bonds)—are very weak.
诸如 H₂O、CO₂、CH₄ 和 I₂ 之类的物质由小的、独立的分子组成。分子内部的共价键非常强,但分子之间的吸引力(称为分子间作用力,如范德华力、永久偶极-偶极相互作用或氢键)非常弱。
- Melting and boiling points: Low because little energy is needed to break the weak intermolecular forces (not the covalent bonds).
- Electrical conductivity: Poor, even when liquid or dissolved, because the particles are neutral molecules with no free delocalised electrons or ions.
- Solubility: Generally soluble in non-polar organic solvents; polar molecules may dissolve in water if they can hydrogen bond.
- 熔点和沸点:低,因为只需少量能量即可破坏微弱的分子间作用力(而非共价键)。
- 导电性:差,即使在液态或溶于水时也不导电,因为微粒是中性分子,没有自由离域电子或离子。
- 溶解性:通常可溶于非极性有机溶剂;极性分子若能形成氢键,则可能溶于水。
For example, at room temperature and pressure, methane (CH₄) and water (H₂O) are gases and liquids respectively, despite having strong covalent O-H or C-H bonds. Their low boiling points arise from the weak forces holding the molecules together in the bulk sample.
例如,在室温和常压下,甲烷(CH₄)是气体,水(H₂O)是液体,尽管其 O-H 或 C-H 共价键很强。它们的低沸点源于在宏观样品中维持分子聚集的微弱作用力。
3. Giant Covalent Structures – Diamond | 巨型共价结构 – 金刚石
In diamond, each carbon atom forms four strong sigma bonds to four other carbon atoms using sp³ hybridised orbitals. This creates a rigid, three-dimensional tetrahedral lattice that extends indefinitely.
在金刚石中,每个碳原子利用 sp³ 杂化轨道与另外四个碳原子形成四个强 σ 键。这形成了一个刚性的、无限延伸的三维四面体晶格。
(Tetrahedral network of C atoms | 四面体网状碳原子)
- Melting point: Extremely high (~3550 °C) because millions of strong covalent bonds must be broken to separate the atoms.
- Hardness: The hardest known natural material due to the rigid, directional bonds.
- Electrical conductivity: Non-conductor because there are no delocalised electrons; all four valence electrons of carbon are localised in bonds.
- Solubility: Insoluble in all solvents because the lattice is too stable and strong to be broken up by solvent-solute interactions.
- 熔点:极高(约 3550 °C),因为要分离原子需要破坏成千上万个强共价键。
- 硬度:自然界已知最硬的物质,归因于刚性且有方向性的化学键。
- 导电性:不导电,因为没有离域电子;碳的四个价电子都局域在共价键中。
- 溶解性:不溶于任何溶剂,因为晶格过于稳定和牢固,溶剂-溶质相互作用无法将其拆散。
4. Giant Covalent Structures – Graphite | 巨型共价结构 – 石墨
Graphite is another allotrope of carbon. Each carbon atom is sp² hybridised and forms three sigma bonds with three neighbouring carbon atoms in a planar hexagonal sheet. The fourth valence electron remains delocalised.
石墨是碳的另一种同素异形体。每个碳原子是 sp² 杂化,并在平面六边形层内与三个相邻碳原子形成三个 σ 键。第四个价电子保持离域状态。
(Hexagonal layers with free electrons | 六边形层状结构,存在自由电子)
- Electrical conductivity: Excellent. The free delocalised electrons can move along the layers, making graphite one of the few non-metallic conductors.
- Lubricating property: Layers slide easily over one another because the weak van der Waals’ forces between the layers are easily overcome.
- Softness: Soft and flaky. Much softer than diamond.
- Melting point: Very high (~3652 °C) due to strong covalent bonds within the layers.
- 导电性:极佳,自由的离域电子可沿平面移动,使石墨成为少数非金属导体之一。
- 润滑性:层与层之间可轻易滑动,因为层间的范德华力很弱,容易克服。
- 柔软性:柔软且呈片状,远比金刚石软。
- 熔点:非常高(约 3652 °C),因为层内存在强的共价键。
5. Giant Covalent Structures – Silicon Dioxide | 巨型共价结构 – 二氧化硅
Silicon dioxide (SiO₂), commonly found as quartz or sand, is another classic example of a giant covalent structure. Each silicon atom is bonded to four oxygen atoms, and each oxygen atom bridges two silicon atoms.
二氧化硅(SiO₂),常见于石英或沙子中,是巨型共价结构的又一经典实例。每个硅原子与四个氧原子成键,每个氧原子则桥接两个硅原子。
(Si atom: 4 bonds | O atom: 2 bonds | 硅原子:四个键 | 氧原子:两个键)
- Melting point: Very high (~1610 °C) because breaking the Si–O network requires enormous energy.
- Hardness: Very hard, but slightly less than diamond.
- Conductivity: Does not conduct electricity; all electrons are localised.
- Chemical formula note: The formula SiO₂ is the empirical formula; the actual crystal is a 3D network with no discrete SiO₂ molecules.
- 熔点:极高(约 1610 °C),因为破坏 Si–O 网络需要巨大的能量。
- 硬度:非常硬,但略低于金刚石。
- 导电性:不导电,所有电子均为局域电子。
- 化学式注意: SiO₂ 是经验式,实际晶体是三维网状结构,并不存在独立的 SiO₂ 分子。
6. Allotropes of Carbon – Graphene and Fullerenes | 碳的同素异形体 – 石墨烯与富勒烯
Graphene is a single layer of graphite, consisting of a one-atom-thick sheet of sp² hybridised carbon atoms. Fullerenes, such as C₆₀ (buckminsterfullerene), are closed cage structures made of carbon rings.
石墨烯是单层的石墨,由单原子厚的 sp² 杂化碳原子层构成。富勒烯(如 C₆₀,即巴克明斯特富勒烯)是由碳环构成的封闭笼状结构。
| Feature | 特征 | Graphene | 石墨烯 | Fullerenes (C₆₀) | 富勒烯 (C₆₀) |
| Structure | 结构 | Single 2D sheet | 单层二维平面 | Ball-like cage | 球状笼形 |
| Conductivity | 导电性 | High (delocalised electrons) | 高(离域电子) | Poor (no free electrons) | 差(无自由电子) |
| Solubility | 溶解性 | Insoluble | 不溶 | Soluble in solvents, e.g., benzene | 可溶于溶剂,如苯 |
7. Comparison Table – Diamond vs Graphite vs SiO₂ | 对比表 – 金刚石 vs 石墨 vs 二氧化硅
Here is a quick reference table that comprehensively compares the three most important giant covalent structures in the IB and CIE syllabuses.
以下是 IB 和 CIE 考纲中三种最重要的巨型共价结构的快速对比表。
| Property | 性质 | Diamond | 金刚石 | Graphite | 石墨 | Silicon Dioxide | 二氧化硅 |
| Hardness | 硬度 | Very hard | 非常硬 | Soft and flaky | 柔软片状 | Hard | 坚硬 |
| Melting point | 熔点 | 3550 °C | 3652 °C | 1610 °C |
| Conduction | 导电 | No | 不导电 | Yes | 导电 | No | 不导电 |
| Bonded atoms per carbon/center | 每个碳/中心原子的成键数 | 4 | 4 | 3 | 3 | Si:4, O:2 | 硅:4,氧:2 |
8. Solubility and Conductivity of Covalent Compounds | 共价化合物的溶解性与导电性
Covalent compounds generally do not conduct electricity because they have no charge carriers. In the liquid or gaseous state, they exist as neutral molecules or separate atoms, so no ions or delocalised electrons move under an electric field.
共价化合物通常不导电,因为它们没有电荷载体。在液态或气态时,它们以中性分子或独立原子的形式存在,因此在电场中没有离子或离域电子移动。
However, towards solubility, the “like dissolves like” rule plays a key role. Non-polar covalent substances (such as oils) dissolve well in non-polar solvents (such as hexane), while polar covalent substances (like HCl or NH₃) dissolve in water via dipole-dipole interactions or hydrogen bonding.
然而,关于溶解性,”相似相溶”规则起着关键作用。非极性共价物质(如油脂)能很好地溶于非极性溶剂(如己烷),而极性共价物质(如 HCl 或 NH₃)则通过偶极-偶极相互作用或氢键溶解于水。
9. Extensive Covalent Networks – Comparison of Structure vs Properties | 巨型共价网络 – 结构与性质的关系
The key examinable idea is that a substance’s physical properties are a direct reflection of its microscopic structure. If strong covalent bonds form a 3D network (diamond, SiO₂), the substance is hard and has an extremely high melting point. If the network forms flat layers (graphite), it conducts electricity but is soft.
核心考点在于:物质的宏观物理性质直接反映其微观结构。如果强共价键形成三维网络(金刚石、SiO₂),该物质坚硬且具有极高熔点。如果网络形成平面层状(石墨),则导电且柔软。
Structure → Properties | 结构 → 性质
When comparing melting points, always argue: “Breaking the strong covalent bonds requires a large amount of energy, hence the high melting point.” Never say “breaking the intermolecular forces” for giant covalent structures.
比较熔点时,务必如此论证:”破坏强的共价键需要大量能量,因此熔点很高。” 对于巨型共价结构,绝不能说”破坏分子间作用力”。
10. Common Mistakes and Exam Tips | 常见错误与考试技巧
- Mistake: Saying diamond and graphite both conduct electricity. Correction: Only graphite conducts because of its delocalised electrons; diamond does not.
- Mistake: Believing SiO₂ has discrete molecules. Correction: It is a giant covalent crystal; the empirical formula is SiO₂.
- Mistake: Confusing intermolecular forces with intramolecular bonds. Correction: Melting points depend on bonds that are broken during phase change (usually IMF for molecules; covalent bonds for giant structures).
- Exam tip: When comparing boiling points, specify the type of covalent structure first, then match the properties.
- 错误:认为金刚石和石墨都导电。更正:只有石墨因离域电子而导电;金刚石不导电。
- 错误:认为 SiO₂ 具有独立分子。更正:它是巨型共价晶体,SiO₂ 只是经验式。
- 错误:混淆分子间作用力与分子内共价键。更正:相变过程中断裂的键决定熔点(分子晶体断裂分子间作用力;巨型结构断裂共价键)。
- 考试技巧:比较沸点时,先指出共价结构类型,再对应描述性质。
11. Quick Summary – Bonding and the Periodic Table | 快速总结 – 成键与元素周期表
In the periodic table, covalent bonding is most common among non-metals. The type of structure (simple molecular vs giant covalent) can often be predicted from the element’s position. Carbon, silicon, and p-block non-metals typically form giant covalent networks with high melting points, whereas elemental non-metals like O₂ and N₂ form simple molecular structures.
在元素周期表中,共价键在非金属之间最为普遍。结构类型(简单分子 vs 巨型共价)通常可根据元素在周期表中的位置预测。碳、硅和 p 区非金属通常形成高熔点的巨型共价网络,而 O₂ 和 N₂ 等元素非金属则形成简单分子结构。
Keep in mind that while strong covalent bonds dictate the stability of a structure, it is the *intermolecular forces* that control many of the physical properties of simple molecular substances, such as volatility and vapour pressure.
请记住,虽然强共价键决定结构的稳定性,但控制简单分子物质许多物理性质(如挥发性与蒸气压)的,实际上是*分子间作用力*。
12. Final Thoughts for IB & CIE Exams | 给 IB 与 CIE 考试的最终建议
Mastering covalent structures is a cornerstone for scoring high in both IB and CIE chemistry papers. Question sets often present an unfamiliar substance and ask you to deduce its properties based on whether it is simple molecular or giant covalent. Always associate simple molecular with weak intermolecular forces, volatility, low melting points; and giant covalent with immense strength, high melting points, and lack of conductivity (except graphite and graphene).
掌握共价结构是 IB 和 CIE 化学考试中拿高分的基础。考题通常给出一种不熟悉的物质,要求你根据它是简单分子还是巨型共价结构来推断其性质。务必牢记:简单分子对应弱分子间作用力、挥发性和低熔点;巨型共价则对应巨大强度、高熔点,并且通常不导电(石墨和石墨烯除外)。
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