Q.(a) In Example 3.1, the electron drift speed is estimated to be only a few for currents in the range of a few amperes? How then is current established almost the instant a circuit is closed?
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Start your 14-day free trial to unlock the full solution →Drift speed is only mm s, yet current appears instantly because the electric field propagates at nearly light speed and starts every electron drifting at once. Collisions give a steady drift ; the huge carrier number makes large; not all electrons move alike (only a tiny net drift); and between collisions the path is straight with no field, parabolic with a field.
(a) Why current is established almost instantly
When the circuit closes, the electric field is set up throughout the conductor at nearly the speed of light (). This field acts on every free electron at essentially the same moment, so all of them begin their slow drift together. The near-instant current is due to the rapid propagation of the field, not to any single electron travelling from the source to the load — like a water-filled pipe where pushing in one end makes water leave the far end at once.
(b) Why a steady drift speed
Between collisions an electron accelerates, . But it collides with the vibrating positive ions every , and each collision randomises its velocity. Averaging, the electron gains a constant drift velocity
opposite to . The collisions behave like a viscous drag that balances the electric force, so the speed does not grow without bound.
(c) Large current from small drift
The current is
where is the free-electron density. For a metal — astronomically large — so even with and the product gives amperes. The sheer number of carriers, not their speed, delivers the current.
(d) Do all electrons move the same way? …
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