EP2256808A2

Semiconductor device and manufacturing method therof

Abstract

A semiconductor device having high operating performance and reliability, and a manufacturing method thereof are provided. An LDD region 207 provided in an n-channel TFT 302 forming a driving circuit enhances the tolerance for hot carrier injection. LDD regions 217 - 220 provided in an n-channel TFT (pixel TFT) 304 forming a pixel portion greatly contribute to the decrease in the OFF current value. Here, the LDD region of the n-channel TFT of the driving circuit is formed such that the concentration of the n-type impurity element becomes higher as the distance from an adjoining drain region decreases.

EP2256808A2, drawing sheet 1
Sheet 1 of 22

Term

Term ended

Projected expiry passed 27 April 2020, 6.4 years ago.

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10 claims: 1 independent, 9 dependent

  1. 1
    A semiconductor device comprising:a driver circuit including a first thin film transistor (303), and a pixel portion including a second thin film transistor (304), the first thin film transistor including a first semiconductor layer, a gate insulating film (133) formed over the first semiconductor layer, and a first gate electrode (116) formed over the gate insulating film, wherein the first semiconductor layer contains a first channel forming region (208), a pair of first impurity regions (211a, 212a), a pair of second impurity regions (211b, 212b), and a pair of third impurity regions (209, 210);the second thin film transistor including a second semiconductor layer, a gate insulating film (128, 129) formed over the second semiconductor layer, and a second gate electrode (117, 118) formed over the gate insulating film, wherein the second semiconductor layer contains a second channel forming region (213, 214), a pair of fourth impurity regions (217-220), and a pair of fifth impurity regions (215, 216, 221);wherein each of the first gate electrode and the second gate electrode has a tapered side surface, wherein at least one of the pair of first impurity regions is overlapped with the tapered side surface of the first gate electrode, wherein the pair of second impurity regions are not overlapped with the first gate electrode, wherein the pair of third impurity regions contain an impurity imparting one conductivity type at a higher concentration than that of the pair of first impurity regions and the pair of second impurity regions, wherein the pair of fourth impurity regions are not overlapped with the second gate electrode, and wherein the pair of fifth impurity regions contain an impurity imparting one conductivity type at a higher concentration than that of the pair of fourth impurity regions.