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Spill-SOS: Self-Pumping Siphon-Capillary Oil Recovery.
Wu, Shenghao; Yang, Huachao; Xiong, Guoping; Tian, Yikuan; Gong, Biyao; Luo, Tengfei; Fisher, Timothy S; Yan, Jianhua; Cen, Kefa; Bo, Zheng; Ostrikov, Kostya Ken.
Afiliação
  • Wu S; State Key Laboratory of Clean Energy Utilization, College of Energy Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.
  • Yang H; State Key Laboratory of Clean Energy Utilization, College of Energy Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.
  • Xiong G; Department of Mechanical Engineering , University of Nevada , Reno , Nevada 89557 , United States.
  • Tian Y; State Key Laboratory of Clean Energy Utilization, College of Energy Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.
  • Gong B; State Key Laboratory of Clean Energy Utilization, College of Energy Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.
  • Luo T; Department of Aerospace and Mechanical Engineering , University of Notre Dame , Notre Dame , Indiana 46556 , United States.
  • Fisher TS; Department of Mechanical & Aerospace Engineering and California nanoSystems Institute , University of California , Los Angeles , California 90095 , United States.
  • Yan J; State Key Laboratory of Clean Energy Utilization, College of Energy Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.
  • Cen K; State Key Laboratory of Clean Energy Utilization, College of Energy Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.
  • Bo Z; State Key Laboratory of Clean Energy Utilization, College of Energy Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.
  • Ostrikov KK; State Key Laboratory of Clean Energy Utilization, College of Energy Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.
ACS Nano ; 13(11): 13027-13036, 2019 Nov 26.
Article em En | MEDLINE | ID: mdl-31660731
ABSTRACT
Oil spills remain a worldwide challenge and need emergency "spill-SOS" actions when they occur. Conventional methods suffer from complex processes and high cost. Here, we demonstrate a solar-heating siphon-capillary oil skimmer (S-SOS) that harvests solar energy, gravitational potential energy, and solid surface energy to enable efficient oil spill recovery in a self-pumping manner. The S-SOS is assembled by an inverted U-shape porous architecture combining solar-heating, siphon, and capillary effects, and works without any external power or manual interventions. Importantly, solid surface energy is used by capillary adsorption to enable the self-starting behavior, gravitational potential energy is utilized by siphon transport to drive the oil flow, and solar energy is harvested by solar-thermal conversion to facilitate the transport speed. In the proof-of-concept work, an all-carbon hierarchical architecture (VG/GF) is fabricated by growing vertically oriented graphene nanosheets (VGs) on a monolith of graphite felt (GF) via a plasma-enhanced method to serve as the U-shape architecture. Consequently, an oil-recovery rate of 35.2 L m-2 h-1 is obtained at ambient condition. When exposed to normal solar irradiation, the oil-recovery rate dramatically increases to 123.3 L m-2 h-1. Meanwhile, the solar-thermal energy efficiency is calculated to be 75.3%. Moreover, the S-SOS system presents excellent stability without obvious performance-degradation over 60 h. The outstanding performance is ascribed to the enhanced siphon action, capillary action, photonic absorption, and interfacial heating in the plasma-made graphene nanostructures. Multiple merits make the current S-SOS design and the VG/GF nanostructures promising for efficient oil recovery and transport of energy stored in chemical bonds.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article