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Bio-inspired self-assembly of large area 3D Ag@SiO2 plasmonic nanostructures with tunable broadband light harvesting AITranslate

Institute of Materials Science and Engineering and Institute of Micro and Nanotechnologies MacroNano®; Leibniz Institute of Photonic Technology Jena (IPHT); Leibniz Institute of Photonic Technology Jena (IPHT); Institute of Materials Science and Engineering and Institute of Micro and Nanotechnologies MacroNano®;Max Planck Institute for Solid State Research;Max Planck Institute for Solid State Research; Institute of Materials Science and Engineering and Institute of Micro and Nanotechnologies MacroNano®
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Publisher: Elsevier
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Abstract AITranslate

Tremendous efforts have been made to fabricate large-scale plasmonic nanostructures, which show wide applications in surface plasmon resonance (SPR) sensing, catalytic conversion, photothermal conversion, optoelectronics, photothermal therapy. However, unable to fabricate over 5 cm2 plasmonic nanostructures with good controllability hinders their further applications. Here, super large-scale (153 cm2) 3D Ag@SiO2 hybrid plasmonic nanostructures with adjustable and ultra-broadband light absorption are fabricated by a simple and controllable two-step approach. The metastable atomic layer deposition (MS-ALD) is combined with physical vapor deposition (PVD) to generate these structures in a self-assembly manner. The structures look like coral tentacles. These excellent properties are attributed to multiple forward scatterings and extinction effects produced by Ag@SiO2 nanostructures. Using 3D Ag@SiO2 plasmonic nanostructures as light absorber for bottom-heating-based evaporation, the water evaporation rate remarkably improves seven times under 1 Sun than that in dark condition. Our results pave the avenue for developing super large-scale Ag-based plasmonic nanostructure with potential applications in solar energy conversion. Graphical abstract Bio-inspired large-scale 3D Ag@SiO2 plasmonic nanostructures with tunable broadband light harvesting are fabricated by metastable atomic layer deposition combined with physical vapor deposition in a self-assembly manner. Download : Download high-res image (188KB) Download : Download full-size image

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Basic Information:

DOI:https://doi.org/10.1016/j.apmt.2021.101238

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Citation Information:

Tremendous efforts have been made to fabricate large-scale plasmonic nanostructures, which show wide applications in surface plasmon resonance (SPR) sensing, catalytic conversion, photothermal conversion, optoelectronics, photothermal therapy. However, unable to fabricate over 5 cm2 plasmonic nanostructures with good controllability hinders their further applications. Here, super large-scale (153 cm2) 3D Ag@SiO2 hybrid plasmonic nanostructures with adjustable and ultra-broadband light absorption are fabricated by a simple and controllable two-step approach. The metastable atomic layer deposition (MS-ALD) is combined with physical vapor deposition (PVD) to generate these structures in a self-assembly manner. The structures look like coral tentacles. These excellent properties are attributed to multiple forward scatterings and extinction effects produced by Ag@SiO2 nanostructures. Using 3D Ag@SiO2 plasmonic nanostructures as light absorber for bottom-heating-based evaporation, the water evaporation rate remarkably improves seven times under 1 Sun than that in dark condition. Our results pave the avenue for developing super large-scale Ag-based plasmonic nanostructure with potential applications in solar energy conversion. Graphical abstract Bio-inspired large-scale 3D Ag@SiO2 plasmonic nanostructures with tunable broadband light harvesting are fabricated by metastable atomic layer deposition combined with physical vapor deposition in a self-assembly manner. Download : Download high-res image (188KB) Download : Download full-size image

quote

GB/T 7714-2015 [1] Pengfei Cheng, Mario Ziegler, Valentin Ripka, et al. Applied Materials Today, 2021(25). DOI:10.1016/j.apmt.2021.101238.
MLA [1] Pengfei Cheng, et al., Applied Materials Today, no. 25, 2021, https://doi.org/10.1016/j.apmt.2021.101238.
APA [1] Pengfei Cheng, Mario Ziegler, Valentin Ripka, Dong Wang, Hongguang Wang, Peter A. van Aken, & Peter Schaaf. (2021). Applied Materials Today(25). https://doi.org/10.1016/j.apmt.2021.101238
IEEE [1] Pengfei Cheng, Mario Ziegler, Valentin Ripka, Dong Wang, Hongguang Wang, Peter A. van Aken, and Peter Schaaf, Applied Materials Today, no. 25, 2021, doi: 10.1016/j.apmt.2021.101238.