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Transferred wrinkled Al2O3 for highly stretchable and transparent graphene–carbon nanotube transistors

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TLDR
The fabrication of highly stretchable and transparent field-effect transistors combining graphene/single-walled carbon nanotube (SWCNT) electrodes and a SWCNT-network channel with a geometrically wrinkled inorganic dielectric layer that retained performance under strains as high as 20% without appreciable leakage current increases or physical degradation is reported.
Abstract
Despite recent progress in the production of bendable thin-film transistors, their development is limited by leakage currents and fragile inorganic oxides. Combining graphene and single-walled carbon nanotube electrodes with a geometrically wrinkled inorganic layer, highly stretchable and transparent field-effect transistors have now been demonstrated.

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Citations
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Journal ArticleDOI

Bio-Inspired Chemical Fabrication of Stretchable Transparent Electrodes.

TL;DR: These vein-based transparent electrodes show excellent electro-optical property even at 50% tensile strains, ideal for flexible and stretchable optoelectronic devices.
Journal ArticleDOI

Advances in semiconductor nanowire growth on graphene

TL;DR: In this article, the challenges for the growth of semiconductor nanowires on graphene, with a special focus on the III-V semiconductors, and highlight some potential applications of the NW/graphene hybrid system.
Journal ArticleDOI

Concurrent design of quasi-random photonic nanostructures.

TL;DR: Winkle lithography is reported, a wafer-scale fabrication procedure whose processing steps can be integrated with concurrent design of nanostructures and function and statistically represented the quasi-random patterns by Fourier spectral density functions (SDFs) that could bridge the processing–structure and structure–performance relations.
Journal ArticleDOI

Stretchable Transparent Conductors: from Micro/Macromechanics to Applications.

TL;DR: This review aims to provide systematical correlation of the conducting element-substrate interaction with the structural stability of conducting networks, as well as the properties and device applications of STCs.
Journal ArticleDOI

Design and characterization of ultra-stretchable monolithic silicon fabric

TL;DR: In this article, the design and fabrication of an all silicon based network of hexagonal islands connected through spiral springs to form an ultra-stretchable arrangement for complete compliance to highly asymmetric shapes is presented.
References
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Journal ArticleDOI

Large-scale pattern growth of graphene films for stretchable transparent electrodes

TL;DR: The direct synthesis of large-scale graphene films using chemical vapour deposition on thin nickel layers is reported, and two different methods of patterning the films and transferring them to arbitrary substrates are presented, implying that the quality of graphene grown by chemical vapours is as high as mechanically cleaved graphene.
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Roll-to-roll production of 30-inch graphene films for transparent electrodes

TL;DR: The roll-to-roll production and wet-chemical doping of predominantly monolayer 30-inch graphene films grown by chemical vapour deposition onto flexible copper substrates are reported, showing high quality and sheet resistances superior to commercial transparent electrodes such as indium tin oxides.
Journal ArticleDOI

Transfer of large-area graphene films for high-performance transparent conductive electrodes

TL;DR: An improved transfer process of large-area graphene grown on Cu foils by chemical vapor deposition is reported on, finding that the transferred graphene films have high electrical conductivity and high optical transmittance that make them suitable for transparent conductive electrode applications.
Journal ArticleDOI

Carbon-based electronics.

TL;DR: This work reviews the progress that has been made with carbon nanotubes and, more recently, graphene layers and nanoribbons and suggests that it could be possible to make both electronic and optoelectronic devices from the same material.
PatentDOI

Stretchable form of single crystal silicon for high performance electronics on rubber substrates

TL;DR: In this article, the authors present stretchable and printable semiconductors and electronic circuits capable of providing good performance when stretched, compressed, flexed, or otherwise deformed.
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