Every card in Atoms, elements and compounds, Year 10: the atom and its particles
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- The model that pictured an atom as a sphere of positive charge with electrons dotted through it
The plum pudding model
HintIt is named after a British Christmas dessert dotted with fruit.
WhyThe model was put forward after the electron was discovered, to explain how an atom could contain negative particles and still be neutral overall. Before that, atoms were pictured as tiny solid balls that could not be split. It was replaced by the nuclear model after the alpha particle scattering experiment.
- In the alpha particle scattering experiment, positively charged alpha particles were fired at a very thin sheet of gold. Most went straight through, but a very few bounced back. What did scientists conclude was at the centre of the atom?
A tiny nucleus that is charged and holds most of the atom's mass
HintSomething small, heavy and able to repel a positive particle.
WhyMost alpha particles passing straight through shows that most of the atom is empty space. The few that were turned back must have met something with a great deal of mass packed into a very small space, and charged so that it pushed them away. That is the nucleus.
- Why could the plum pudding model not explain alpha particles bouncing back from thin gold foil?
Its mass and positive charge are spread out, so nothing in it could turn an alpha particle back
HintThink how thinly the 'pudding' is smeared across the whole atom.
WhyIf the plum pudding model were right, every alpha particle should pass through with hardly any change of direction. A few bouncing back was new evidence that the model could not account for, so it was replaced by the nuclear model, in which the mass and the positive charge are concentrated at the centre.
- Which scientist improved the nuclear model by proposing that electrons circle the nucleus only at certain fixed distances? (surname only)
Bohr
HintA Danish physicist; his first name was Niels.
WhyIn the first nuclear model the electrons were simply somewhere around the nucleus. This scientist's version put them in definite orbits at set distances, and his calculations agreed with what experiments showed. Those orbits are the energy levels, or shells, used to write electronic structures such as 2,8,1.
- The model of the atom changed as its parts were discovered, in this order: first the ____, then the nucleus, then the proton and, about twenty years after the nucleus, the ____.
electron; neutron
HintThe earliest find was the light negative particle; the latest was the particle with no charge.
WhyEach discovery forced a new model. The first led to the plum pudding model and the scattering experiment led to the nuclear model. Later work showed that the positive charge of a nucleus comes in whole-number lots, each called a proton, and James Chadwick's experiments then gave the evidence for the last particle in the nucleus.
- What is the relative charge of a neutron? (number only)
0
HintIts name is a clue: it sounds like the word for being neither one thing nor the other.
WhyThe relative charges are: proton +1, neutron 0, electron −1. Because the neutron has no charge, changing the number of neutrons changes an atom's mass but not its charge.
- An atom contains charged particles, yet it has no overall electrical charge. Why?
It has equal numbers of protons and electrons
HintEach positive particle in the nucleus is cancelled by one negative particle outside it.
WhyA proton is +1 and an electron is −1, so one of each cancels exactly. Sodium, for example, has 11 protons and 11 electrons: +11 and −11 make zero.
- The number of protons in an atom of an element
The atomic number
HintOn the periodic table it is the figure that rises by one from each element to the next.
WhyEvery atom of an element has the same number of protons, and no two elements share the same number. Carbon is always 6 and oxygen always 8. It is also called the proton number.
- One atom has 17 protons and another has 18. Could they be atoms of the same element?
No — the number of protons fixes the element
HintAsk which particle count never varies among atoms of one kind.
WhySeventeen protons is always chlorine and eighteen is always argon. Atoms of one element can differ in their neutrons, and can gain or lose electrons, but a different number of protons means a different element.
- In the nuclear model, the ____ and ____ are packed together in the nucleus at the centre of the atom, and the electrons move around it.
protons; neutrons
HintOne of the two is positive and the other has no charge at all.
WhyThe nucleus is positive overall because of the positive particles in it. The negative electrons move around the nucleus in energy levels, which are also called shells.
- The radius of an atom is about 0.1 nm. Write this distance in metres, in standard form.
1 × 10⁻¹⁰ m
HintA nanometre is a billionth of a metre; then move the decimal point one more place.
Why1 nm is 1 × 10⁻⁹ m, so 0.1 nm is 0.1 × 10⁻⁹ m, which is 1 × 10⁻¹⁰ m in standard form.
- Compared with the radius of the whole atom, roughly how big is the radius of its nucleus?
Less than 1/10 000 of it
HintThink of a small pea at the centre of a football stadium.
WhyAn atom is about 1 × 10⁻¹⁰ m in radius and a nucleus about 1 × 10⁻¹⁴ m, which is ten thousand times smaller. So almost the whole volume of an atom is empty space.
- A model atom is built to scale with a radius of 100 m. The radius of a nucleus is about 1/10 000 of the radius of its atom. What is the radius of the model's nucleus, in centimetres? (number only)
1
HintDivide first, then change metres into the smaller unit.
Why100 m ÷ 10 000 = 0.01 m, and 0.01 m × 100 = 1 cm. So if an atom were made 200 m wide, about the length of two football pitches, its nucleus would be only 2 cm across, the size of a large marble.
- Nearly all of an atom's mass is found in its ____.
nucleus
HintIt is where the two heavy kinds of particle are found.
WhyProtons and neutrons each have a relative mass of 1, while the mass of an electron is very small. Since the protons and neutrons are all at the centre, that is where nearly all the mass is, even though it takes up a tiny fraction of the atom's volume.
- One billionth of a metre, written 1 × 10⁻⁹ m
A nanometre
HintIts prefix is the one used in the name for technology built on the scale of atoms.
WhyThe prefix nano- means 10⁻⁹, so 1 nm = 0.000 000 001 m. It is a convenient unit for atoms and small molecules: an atom is about 0.1 nm in radius.
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