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Q.Explain the following observations using Einstein's photoelectric equation:

(a) Photoelectric emission does not occur from a surface when the frequency of the light incident on it is less than a certain minimum value.
(b) It is the frequency, and not the intensity, of the incident light which affects the maximum kinetic energy of the photoelectrons.
(c) The cut-off voltage (V0)(V_0) versus frequency (ν)(\nu) of the incident light curve is a straight line with a slope he\frac{h}{e}.
CBSECBSE Class XII Board 2025Subjective· 3mImportance★★★★★
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Einstein’s photoelectric equation Kmax=hν−ϕK_{\text{max}} = h\nu - \phi explains all three observations: a minimum frequency (threshold) exists because electrons need energy to escape; only frequency (not intensity) changes KmaxK_{\text{max}} because intensity only changes the number of photons; and the V0V_0 vs ν\nu graph is linear with slope h/eh/e because stopping voltage directly measures Kmax/eK_{\text{max}}/e.


The Core Idea: Einstein’s Photoelectric Equation

Before we dive into each observation, let’s recall the revolutionary idea Einstein proposed in 1905. Light is not a continuous wave but a stream of discrete energy packets called photons. Each photon carries an energy given by:

Ephoton=hνE_{\text{photon}} = h\nu

where hh is Planck’s constant (6.63×10−34 J⋅s6.63 \times 10^{-34} \ \text{J·s}) and ν\nu is the frequency of the light.

When a photon strikes a metal surface, it transfers all its energy to a single electron. The electron uses some of this energy to overcome the attractive forces holding it in the metal — this minimum energy needed to escape is called the work function, ϕ\phi (a property of the metal). Any leftover energy becomes the electron’s kinetic energy after it leaves the surface.

This gives us Einstein’s photoelectric equation:

Kmax=hν−ϕK_{\text{max}} = h\nu - \phi

Here KmaxK_{\text{max}} is the maximum kinetic energy of an emitted photoelectron. (Some electrons lose extra energy to collisions inside the metal, so they emerge with less kinetic energy — but the fastest ones follow this equation exactly.)

Now let’s see how this single equation explains all three observations.


(a) Why is there a minimum frequency for photoelectric emission?

Observation: If you shine light of very low frequency (say, red light) on a metal, no electrons come out — no matter how bright the light is. But if you increase the frequency (say, to ultraviolet), electrons start flying off.

Explanation from the equation:

For an electron to be emitted, the photon must give it at least enough energy to overcome the work function. That is:

hν≥ϕh\nu \geq \phi

If hν<ϕh\nu < \phi, the photon simply doesn’t have enough energy to free an electron. The electron absorbs the photon, gets a little jolt, but can’t escape — it falls back and the energy dissipates as heat.

The threshold frequency ν0\nu_0 is the frequency where the photon energy exactly equals the work function:

hν0=ϕ⇒ν0=ϕhh\nu_0 = \phi \quad \Rightarrow \quad \nu_0 = \frac{\phi}{h}

For any ν<ν0\nu < \nu_0, hν−ϕh\nu - \phi is negative — meaning no electron can be ejected at all.

Watch out

A common mistake is to think that increasing the intensity (brightness) of low-frequency light will eventually cause emission. It won’t. Intensity only increases the number of photons, not the energy per photon. Each photon still carries too little energy to free an electron — like throwing a thousand pebbles at a locked door instead of one key.


(b) Why does frequency (not intensity) affect the maximum kinetic energy?

Observation: If you make the light brighter (higher intensity) but keep the same frequency, more electrons come out — but their maximum kinetic energy stays the same. If you increase the frequency, the electrons fly out faster (higher KmaxK_{\text{max}}).

Explanation from the equation:

Look at Kmax=hν−ϕK_{\text{max}} = h\nu - \phi. The only variables here are ν\nu (frequency) and ϕ\phi (fixed for a given metal). Intensity does not appear in this equation at all.

Why? Because intensity is about how many photons hit the surface per second. Each photon interacts with one electron. More photons mean more electrons get kicked out (higher photocurrent), but each electron still gets the same energy hνh\nu from its individual photon. The maximum kinetic energy of any single electron depends only on the energy of the photon that hit it — which depends only on frequency.

Tip

Think of it like this: frequency is the quality of each punch (how hard each photon hits), while intensity is the quantity of punches (how many photons hit per second). A hundred gentle taps won’t break a board, but one strong punch will — and that one strong punch’s force doesn’t change if you add more gentle taps alongside it.

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