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- W2949134413 abstract "Thin-film transistors (TFTs) are critical components in $e.g.$ flat-panel displays. In emerging semiconductors for TFTs, such as amorphous oxides and polymers, electrons are slower than in crystalline silicon (where they move in bands), but faster than in amorphous silicon (where they hop). Understanding electron and hole motion in these emerging semiconductors has been difficult so far. The author discuss a $tphantom{rule{0}{0ex}}rphantom{rule{0}{0ex}}aphantom{rule{0}{0ex}}nphantom{rule{0}{0ex}}sphantom{rule{0}{0ex}}pphantom{rule{0}{0ex}}ophantom{rule{0}{0ex}}rphantom{rule{0}{0ex}}t$ $rphantom{rule{0}{0ex}}ephantom{rule{0}{0ex}}dphantom{rule{0}{0ex}}uphantom{rule{0}{0ex}}cphantom{rule{0}{0ex}}tphantom{rule{0}{0ex}}iphantom{rule{0}{0ex}}ophantom{rule{0}{0ex}}n$ $fphantom{rule{0}{0ex}}aphantom{rule{0}{0ex}}cphantom{rule{0}{0ex}}tphantom{rule{0}{0ex}}ophantom{rule{0}{0ex}}r$ to rigorously enable use of the Boltzmann transport equation, to quantitatively understand electron motion in a range of thin-film semiconductors. This work fills an important gap in semiconductor physics that has lingered for decades." @default.
- W2949134413 created "2019-06-27" @default.
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- W2949134413 date "2019-06-17" @default.
- W2949134413 modified "2023-09-26" @default.
- W2949134413 title "Redefining the Mobility Edge in Thin-Film Transistors" @default.
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- W2949134413 doi "https://doi.org/10.1103/physrevapplied.11.064039" @default.
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