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Mechanism of Electric Power Generation from Ionic Droplet Motion on Polymer Supported Graphene.
Yang, Shanshan; Su, Yudan; Xu, Ying; Wu, Qiong; Zhang, Yuanbo; Raschke, Markus B; Ren, Mengxin; Chen, Yan; Wang, Jianlu; Guo, Wanlin; Ron Shen, Y; Tian, Chuanshan.
Afiliação
  • Yang S; Department of Physics, State Key Laboratory of Surface Physics and Key Laboratory of Micro- and Nano-Photonic Structures (MOE) , Fudan University , Shanghai 200433 , China.
  • Su Y; Department of Physics, State Key Laboratory of Surface Physics and Key Laboratory of Micro- and Nano-Photonic Structures (MOE) , Fudan University , Shanghai 200433 , China.
  • Xu Y; Department of Physics, State Key Laboratory of Surface Physics and Key Laboratory of Micro- and Nano-Photonic Structures (MOE) , Fudan University , Shanghai 200433 , China.
  • Wu Q; Department of Physics, State Key Laboratory of Surface Physics and Key Laboratory of Micro- and Nano-Photonic Structures (MOE) , Fudan University , Shanghai 200433 , China.
  • Zhang Y; Department of Physics, State Key Laboratory of Surface Physics and Key Laboratory of Micro- and Nano-Photonic Structures (MOE) , Fudan University , Shanghai 200433 , China.
  • Raschke MB; Collaborative Innovation Center of Advanced Microstructures , Nanjing 210093 , China.
  • Ren M; Department of Physics, Department of Chemistry, and JILA , University of Colorado , Boulder , Colorado 80309 , United States.
  • Chen Y; School of Physics and TEDA Applied Physics Institute , Nankai University , Tianjin 300071 , China.
  • Wang J; National Laboratory for Infrared Physics, Shanghai Institute of Technical Physics , Chinese Academy of Sciences , Shanghai 200083 , China.
  • Guo W; National Laboratory for Infrared Physics, Shanghai Institute of Technical Physics , Chinese Academy of Sciences , Shanghai 200083 , China.
  • Ron Shen Y; Institute of Nanoscience , Nanjing University of Aeronautics and Astronautics , Nanjing 210016 , China.
  • Tian C; Department of Physics , University of California, Berkeley , Berkeley , California 94720 , United States.
J Am Chem Soc ; 140(42): 13746-13752, 2018 Oct 24.
Article em En | MEDLINE | ID: mdl-30257558
ABSTRACT
Graphene-based electric power generation that converts mechanical energy of flow of ionic droplets over the device surface into electricity has emerged as a promising candidate for blue-energy network. Yet the lack of a microscopic understanding of the underlying mechanism has prevented ability to optimize and control the performance of such devices. This requires information on interfacial structure and charging behavior at the molecular level. Here, we use sum-frequency vibrational spectroscopy to study the roles of solvated ions, graphene, surface moiety on substrate and water molecules at the aqueous solution/graphene/polymer interface. We discover that the surface dipole layer of the neutral polymer is responsible for ion attraction toward and adsorption at the graphene surface that leads to electricity generation in graphene. Graphene itself does not attract ions and only acts as a conducting sheet for the induced carrier transport. Replacing the polymer by an organic ferroelectric substrate could allow switching of the electricity generation with long durability. Our microscopic understanding of the electricity generation process paves the way for the rational design of scalable and more efficient droplet-motion-based energy transducer devices.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2018 Tipo de documento: Article