Date | November 2016 | Marks available | 3 | Reference code | 16N.2.HL.TZ0.11 |
Level | Higher level | Paper | Paper 2 | Time zone | Time zone 0 |
Command term | Explain | Question number | 11 | Adapted from | N/A |
Question
An apparatus is used to investigate the photoelectric effect. A caesium cathode C is illuminated by a variable light source. A variable power supply is connected between C and the collecting anode A. The photoelectric current I is measured using an ammeter.
A current is observed on the ammeter when violet light illuminates C. With V held constant the current becomes zero when the violet light is replaced by red light of the same intensity. Explain this observation.
The graph shows the variation of photoelectric current I with potential difference V between C and A when violet light of a particular intensity is used.
The intensity of the light source is increased without changing its wavelength.
(i) Draw, on the axes, a graph to show the variation of I with V for the increased intensity.
(ii) The wavelength of the violet light is 400 nm. Determine, in eV, the work function of caesium.
(iii) V is adjusted to +2.50V. Calculate the maximum kinetic energy of the photoelectrons just before they reach A.
Markscheme
reference to photon
OR
energy = hf or =\(\frac{{hc}}{\lambda }\)
violet photons have greater energy than red photons
when hf > Φ or photon energy> work function then electrons are ejected
frequency of red light < threshold frequency «so no emission»
OR
energy of red light/photon < work function «so no emission»
i
line with same negative intercept «–1.15V»
otherwise above existing line everywhere and of similar shape with clear plateau
Award this marking point even if intercept is wrong.
ii
\(\frac{{hc}}{{\lambda e}} = \) «\(\frac{{6.63 \times {{10}^{ - 34}} \times 3 \times {{10}^8}}}{{40 \times {{10}^{ - 9}} \times 1.6 \times {{10}^{ - 19}}}} = \)» 3.11 «eV»
Intermediate answer is 4.97×10−19 J.
Accept approach using f rather than c/λ
«3.10 − 1.15 =» 1.96 «eV»
Award [2] for a bald correct answer in eV.
Award [1 max] if correct answer is given in J (3.12×10−19 J).
iii
«KE = qVs =» 1.15 «eV»
OR
1.84 x 10−19 «J»
Allow ECF from MP1 to MP2.
adds 2.50 eV = 3.65 eV
OR
5.84 x 10−19 J
Must see units in this question to identify energy unit used.
Award [2] for a bald correct answer that includes units.
Award [1 max] for correct answer without units.