Physics · Ch 9 — Semiconductor Electronics
Output Characteristics
Output Characteristics
The output characteristic plots the collector current against the collector-to-emitter voltage , at several fixed values of base current : is first set to a chosen value, then is stepped up and the resulting recorded, and the whole sweep is repeated for several different values of , giving a family of curves. Four important regions are read off this family. (i) SATURATION region: as rises above 0 V, rises rapidly to an almost--independent value in a nearly ohmic region (labelled OA on the curve) up to the so-called knee voltage; transistors are always operated ABOVE this knee voltage in normal (non-switch) use. (ii) CUT-OFF region: even after is reduced all the way to zero, a small collector current still exists, due to minority carriers crossing the collector-base junction plus a surface leakage current -- this is the cut-off region, so called because the main (base-current-driven) collector current is effectively cut off. (iii) ACTIVE region: here the emitter-base junction is forward biased and collector-base junction reverse biased (exactly the forward-active bias condition of 9.4.2), and is nearly flat/independent of for a given -- this is the region used for voltage, current and power amplification. (iv) BREAKDOWN region: if is pushed beyond the manufacturer's rated value, rises enormously and causes junction breakdown, potentially damaging the transistor. The output impedance is defined as the ratio of a small change in to the resulting small change in , at fixed : ; unlike the input impedance, the output impedance for a common-emitter transistor is very LOW (the active-region curves are nearly flat, i.e. large for small is NOT what low output impedance means -- rather it is that the curve is nearly flat, so is small even for a sizeable swing in , giving a large ... note the text states the output impedance is low, consistent with treating the active-region slope itself a …
What this figure shows. Collector-emitter voltage runs along the x-axis and collector current up the y-axis, with a family of five curves plotted for mA; each curve rises almost vertically from the origin (the labelled 'Saturation region'), bends over into a nearly flat, slightly rising segment (the labelled 'Active region', with a small slope triangle marking where the output impedance is read off), and the curve alone sits almost flat along the x-axis, explicitly labelled the 'Cut …
What this figure shows. Base current (A) runs along the x-axis and collector current (mA) up the y-axis, plotted at constant : the curve is essentially a straight line through a small positive y-intercept (the common-emitter leakage current , present even when ), with a slope triangle marked to show graphically how the forward current gain is read directly off this curve as its slope. …