Advanced Materials · 2014 · 453 citations · 43 references
Materials ScienceGraphene NanomeshesElectrical EngineeringChemical EngineeringEngineeringGraphene Triboelectric NanogeneratorFlexible ElectronicsNanomaterialsNanoelectronicsGraphene Quantum DotGraphene FiberApplied PhysicsGrapheneGraphene NanoribbonGraphene-based Nano-antennasEl DisplayElectrical Power Output
Transparent flexible graphene triboelectric nanogenerators as new promising applications of chemical vapor deposition-grown graphene are successfully demonstrated. The work function and friction are decisive factors to understand the difference in output performance depending on the number of layers of graphene. In this work, we were able to power an LCD, LEDs, and an EL display using the electrical power output of the graphene triboelectric nanogenerator without any external energy source. As a service to our authors and readers, this journal provides supporting information supplied by the authors. Such materials are peer reviewed and may be re-organized for online delivery, but are not copy-edited or typeset. Technical support issues arising from supporting information (other than missing files) should be addressed to the authors. Please note: The publisher is not responsible for the content or functionality of any supporting information supplied by the authors. Any queries (other than missing content) should be directed to the corresponding author for the article.
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Superior Thermal Conductivity of Single-Layer Graphene
Alexander A. Balandin, Suchismita Ghosh, Wenzhong Bao et al. · Nano Letters · 2008 · 13.5K citations
Materials Science, Superior Thermal Conductivity, Graphene Nanomeshes +12
Large-scale pattern growth of graphene films for stretchable transparent electrodes
Keun‐Soo Kim, Yüe Zhao, Houk Jang et al. · Nature · 2009 · 10.4K citations
Flexible triboelectric generator
Feng Ru Fan, Zhong‐Qun Tian, Zhong Lin Wang · Nano Energy · 2012 · 6.3K citations
Graphene based materials: Past, present and future
Virendra Singh, Daeha Joung, Lei Zhai et al. · Progress in Materials Science · 2011 · 3.5K citations