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Journal ArticleDOI

Oxide Semiconductor Thin‐Film Transistors: A Review of Recent Advances

Elvira Fortunato, +2 more
- 12 Jun 2012 - 
- Vol. 24, Iss: 22, pp 2945-2986
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TLDR
The recent progress in n- and p-type oxide based thin-film transistors (TFT) is reviewed, with special emphasis on solution-processed andp-type, and the major milestones already achieved with this emerging and very promising technology are summarizeed.
Abstract
Transparent electronics is today one of the most advanced topics for a wide range of device applications. The key components are wide bandgap semiconductors, where oxides of different origins play an important role, not only as passive component but also as active component, similar to what is observed in conventional semiconductors like silicon. Transparent electronics has gained special attention during the last few years and is today established as one of the most promising technologies for leading the next generation of flat panel display due to its excellent electronic performance. In this paper the recent progress in n- and p-type oxide based thin-film transistors (TFT) is reviewed, with special emphasis on solution-processed and p-type, and the major milestones already achieved with this emerging and very promising technology are summarizeed. After a short introduction where the main advantages of these semiconductors are presented, as well as the industry expectations, the beautiful history of TFTs is revisited, including the main landmarks in the last 80 years, finishing by referring to some papers that have played an important role in shaping transparent electronics. Then, an overview is presented of state of the art n-type TFTs processed by physical vapour deposition methods, and finally one of the most exciting, promising, and low cost but powerful technologies is discussed: solution-processed oxide TFTs. Moreover, a more detailed focus analysis will be given concerning p-type oxide TFTs, mainly centred on two of the most promising semiconductor candidates: copper oxide and tin oxide. The most recent data related to the production of complementary metal oxide semiconductor (CMOS) devices based on n- and p-type oxide TFT is also be presented. The last topic of this review is devoted to some emerging applications, finalizing with the main conclusions. Related work that originated at CENIMAT|I3N during the last six years is included in more detail, which has led to the fabrication of high performance n- and p-type oxide transistors as well as the fabrication of CMOS devices with and on paper.

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Citations
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Journal ArticleDOI

Fabrication of p-Type SnO Thin-Film Transistors by Sputtering with Practical Metal Electrodes

TL;DR: In this article, p-type thin-film transistors using polycrystalline tin monoxide (SnO) active layers were achieved by an industry-compatible sputtering technique with a SnO ceramic target.
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Amorphous InGaZnO and metal oxide semiconductor devices: an overview and current status

TL;DR: An overview of the history and development of metal oxide devices, from their earliest inception to the most recent advances, can be found in this article, with a discussion of the factors that need to be considered in designing metal oxide semiconducting devices, including material choice, deposition methods and device structure.
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Ultra-wide bandgap, conductive, high mobility, and high quality melt-grown bulk ZnGa2O4 single crystals

TL;DR: In this paper, the authors obtained bulk ZnGa2O4 single crystals directly from the melt, which are characterized by a stoichiometric or near-stoichiometric composition with a normal spinel structure at room temperature and by a narrow full width at half maximum of the 400 peak of (100)-oriented samples of 23 arcsec.
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References
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Journal ArticleDOI

Room-temperature fabrication of transparent flexible thin-film transistors using amorphous oxide semiconductors

TL;DR: A novel semiconducting material is proposed—namely, a transparent amorphous oxide semiconductor from the In-Ga-Zn-O system (a-IGZO)—for the active channel in transparent thin-film transistors (TTFTs), which are fabricated on polyethylene terephthalate sheets and exhibit saturation mobilities and device characteristics are stable during repetitive bending of the TTFT sheet.
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