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Performance of carbon nanotube-dispersed thin-film transistors
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10.1063/1.2357852
/content/aip/journal/apl/89/14/10.1063/1.2357852
http://aip.metastore.ingenta.com/content/aip/journal/apl/89/14/10.1063/1.2357852
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Figures

Image of FIG. 1.
FIG. 1.

(Color online) (a) Organic thin-film network transistor with channel length , channel width , and individual tube length . Source , drain , and gate are also indicated. The clusters of nanotubes on the left and right sides of the black curve are not connected. The potential distribution in the CNT network is also shown. (b) cross section through the organic substrate of the TFT in (a) showing contours of potential distribution. , , , and . (c) cross section through the organic substrate of the TFT showing contours of potential distribution. , , , and .

Image of FIG. 2.
FIG. 2.

(Color online) Computed at for different CNT densities is compared with experimental results in Ref. 1. The vol % of CNT dispersions used in the experiments and the corresponding network density used in the computations are shown. , , and . The shift in the curves due to the start of semiconducting-CNT percolation for CNT is shown by the dashed line.

Image of FIG. 3.
FIG. 3.

(Color online) (a) Effective reduction in channel length against density for gate voltage . The power-law exponents for high-density CNT dispersions are also shown. The error bars reflect the statistical measure of the variation across the ensemble. , , and . (b) Number of transistors in the circuit against for and 10% (left side). Normalized on current of the transistor against (right side). , , , and . For , the projections for are shown by dashed lines.

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/content/aip/journal/apl/89/14/10.1063/1.2357852
2006-10-02
2014-04-19
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752b84549af89a08dbdd7fdb8b9568b5 journal.articlezxybnytfddd
Scitation: Performance of carbon nanotube-dispersed thin-film transistors
http://aip.metastore.ingenta.com/content/aip/journal/apl/89/14/10.1063/1.2357852
10.1063/1.2357852
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