Resistance, Collisions and Temperature

Elektrik ve manyetizma Orta Ücretsiz VR · AR
Resistance, Collisions and Temperature – Elektrik ve manyetizma
Resistance, Collisions and Temperature – Elektrik ve manyetizma

Look inside a 3D copper sample: ion cores vibrating in a staggered lattice while a single electron zig-zags between them, with its collisions counted live. The vibration amplitude follows the square root of the absolute temperature, so R climbs in a straight line — starting from R₀, never from the origin.

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Resistance comes from electrons colliding with vibrating lattice ions. Raising the temperature increases the vibration amplitude, so each core sweeps a larger area, the electron's mean free path shortens and collisions become more frequent. Over the ordinary range this gives the linear law R = R₀(1 + αt), where R₀ is the resistance at 0 °C and α is the temperature coefficient. The line is straight but does not pass through the origin: extrapolating back to zero resistance reaches a temperature well below 0 °C, which is why R₀ and not zero is the intercept.

3DR-t graphR0 interceptabsolute zerocollisionsion coresresistancetemperature coefficient