Every card in Bonding and structure, Year 10: diamond, graphite and graphene
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- In diamond, how many covalent bonds does each carbon atom form? (number only)
4
HintEvery one of carbon's outer electrons is used.
WhyEach carbon atom is joined to four others, and each of those to four more, building a rigid three-dimensional giant structure.
- Why is diamond very hard?
Every atom is held by four strong covalent bonds in a giant structure
HintTo scratch it you would have to tear atoms out of a rigid network.
WhyThe bonds run in all directions through the whole crystal, so there are no weak points and no layers that can slide. Nothing can be moved without breaking strong covalent bonds.
- Why does diamond not conduct electricity?
It has no delocalised electrons
HintEverything in each atom's outer shell is busy holding the structure together.
WhyCarbon has four outer electrons and in diamond all four are used in covalent bonds. With no free electrons and no ions, there is nothing that can move to carry charge.
- Ice melts at 0 °C, but diamond melts only at a very high temperature. What has to be broken to melt diamond that is not broken when ice melts?
Covalent bonds
HintWhen ice melts the H2O molecules stay whole; diamond has no molecules to keep whole.
WhyIce is made of small molecules held to one another by weak intermolecular forces, which are easily overcome. Diamond is a giant structure, so its atoms can move only when strong covalent bonds are broken.
- Diamond and graphite are both pure carbon. Why are their properties so different?
Their atoms are bonded and arranged in different ways
HintSame building blocks, but not the same blueprint.
WhyIn diamond each atom makes four bonds in a rigid three-dimensional network. In graphite each atom makes three bonds, giving flat layers with free electrons. The properties of a material come from its structure and bonding, not only from which atoms it contains.
- In graphite, how many covalent bonds does each carbon atom form? (number only)
3
HintOne of carbon's four outer electrons is left out of the bonding.
WhyEach carbon atom is bonded to three others in the same flat layer. The fourth outer electron from each atom is delocalised.
- Graphite is a non-metal, yet it conducts electricity. Why?
One electron from each carbon atom is delocalised and free to move
HintThere are four outer electrons available, yet fewer bonds than that are made.
WhyOnly three of each atom's four outer electrons are used in bonds. The fourth is free to move, and moving electrons carry charge. In this respect graphite is like a metal.
- Why is graphite soft and slippery?
There are no covalent bonds between its layers, so the layers slide
HintThink of what happens when you drag a pencil across paper.
WhyWithin a layer the atoms are strongly bonded, but one layer is held to the next only weakly. The layers slide over each other and rub off easily, which is why graphite is used in pencils and as a lubricant.
- In graphite, the carbon atoms are joined in flat layers made of ____ rings.
hexagonal
HintIt is the same shape as the cells of a honeycomb.
WhyEach carbon atom bonds to three others, which makes a flat sheet of six-sided rings, like chicken wire. The sheets are stacked on top of one another.
- Graphite is soft, yet it has a very high melting point. Why is the melting point so high?
The strong covalent bonds within each layer must be broken
HintSliding sheets past one another is easy; pulling a single sheet to pieces is not.
WhyGraphite is a giant covalent structure. Softness comes from the layers sliding, which needs no bonds to break, but melting means separating the atoms inside the layers, and those are held by strong covalent bonds.
- A single layer of graphite, just one atom thick
Graphene
HintIts name is "graphite" with the ending swapped for "-ene".
WhyGraphene is one sheet of carbon atoms in hexagonal rings. Like graphite it has delocalised electrons, so it conducts electricity, and its strong covalent bonds make it very strong for its mass. These properties make it useful in electronics and composites.
- How many carbon atoms are there in one molecule of buckminsterfullerene? (number only)
60
HintThe molecule is a hollow ball; the number matches the minutes in an hour.
WhyBuckminsterfullerene, formula C60, was the first fullerene to be discovered. Its sixty carbon atoms form a hollow sphere.
- A fullerene shaped like a hollow tube, extremely long compared with its width
A carbon nanotube
HintThe prefix in its name means a billionth, a clue to how thin it is.
WhyA nanotube is like a sheet of graphene rolled into a cylinder. Nanotubes are useful in nanotechnology, in electronics and for strengthening materials.
- The structure of a fullerene is based on rings of six carbon atoms. What other sizes of ring may it also contain?
Rings of five or seven carbon atoms
HintOne fewer and one more than a hexagon has.
WhyFlat sheets can be made from hexagons alone, as in graphite. Rings of other sizes make the sheet curve, which is how a fullerene closes up into a hollow shape.
- Give one area in which carbon nanotubes are useful.
Electronics, nanotechnology or strengthening materials (any one)
HintThink about what a very thin, very strong tube that conducts could be good for.
WhyNanotubes are extremely thin, strong for their size and able to conduct. The specification names nanotechnology, electronics and materials as the areas where these properties are used.
1★ GCSE-CHEM-BON-0059
2★ GCSE-CHEM-BON-0060
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5★ GCSE-CHEM-BON-0063
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10★ GCSE-CHEM-BON-0068
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12★ GCSE-CHEM-BON-0070
13★ GCSE-CHEM-BON-0071
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15★ GCSE-CHEM-BON-0073
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