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Direct transfer of wafer-scale graphene films
Author(s) -
Maria Kim,
Ali Shah,
Changfeng Li,
Petri Mustonen,
Jannatul Susoma,
Farshid Manoocheri,
Juha Riikonen,
Harri Lipsanen
Publication year - 2017
Publication title -
2d materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.702
H-Index - 72
ISSN - 2053-1583
DOI - 10.1088/2053-1583/aa780d
Subject(s) - graphene , materials science , nanotechnology , chemical vapor deposition , flexible electronics , optoelectronics , wafer , sheet resistance , fabrication , substrate (aquarium) , layer (electronics) , pathology , oceanography , alternative medicine , medicine , geology
Flexible electronics serve as the ubiquitous platform for the next-generation life science, environmental monitoring, display, and energy conversion applications. Outstanding multifunctional mechanical, thermal, electrical, and chemical properties of graphene combined with transparency and flexibility solidifies it as ideal for these applications. Although chemical vapor deposition (CVD) enables cost-effective fabrication of high-quality large-area graphene films, one critical bottleneck is an efficient and reproducible transfer of graphene to flexible substrates. We explore and describe a direct transfer method of 6-inch monolayer CVD graphene onto transparent and flexible substrate based on direct vapor phase deposition of conformal parylene on as-grown graphene/copper (Cu) film. The method is straightforward, scalable, cost-effective and reproducible. The transferred film showed high uniformity, lack of mechanical defects and sheet resistance for doped graphene as low as 18 Ω/sq and 96.5% transparency at 550 nm while withstanding high strain. To underline that the introduced technique is capable of delivering graphene films for next-generation flexible applications we demonstrate a wearable capacitive controller, a heater, and a self-powered triboelectric sensor.Peer reviewe

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