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Toward digitally controlled catalyst architectures: Hierarchical nanoporous gold via 3D printing.
Zhu, Cheng; Qi, Zhen; Beck, Victor A; Luneau, Mathilde; Lattimer, Judith; Chen, Wen; Worsley, Marcus A; Ye, Jianchao; Duoss, Eric B; Spadaccini, Christopher M; Friend, Cynthia M; Biener, Juergen.
Affiliation
  • Zhu C; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
  • Qi Z; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
  • Beck VA; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
  • Luneau M; Harvard University, Cambridge, MA 02138, USA.
  • Lattimer J; Harvard University, Cambridge, MA 02138, USA.
  • Chen W; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
  • Worsley MA; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
  • Ye J; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
  • Duoss EB; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
  • Spadaccini CM; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
  • Friend CM; Harvard University, Cambridge, MA 02138, USA.
  • Biener J; Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
Sci Adv ; 4(8): eaas9459, 2018 08.
Article in En | MEDLINE | ID: mdl-30182056
Monolithic nanoporous metals, derived from dealloying, have a unique bicontinuous solid/void structure that provides both large surface area and high electrical conductivity, making them ideal candidates for various energy applications. However, many of these applications would greatly benefit from the integration of an engineered hierarchical macroporous network structure that increases and directs mass transport. We report on 3D (three-dimensional)-printed hierarchical nanoporous gold (3DP-hnp-Au) with engineered nonrandom macroarchitectures by combining 3D printing and dealloying. The material exhibits three distinct structural length scales ranging from the digitally controlled macroporous network structure (10 to 1000 µm) to the nanoscale pore/ligament morphology (30 to 500 nm) controlled by dealloying. Supercapacitance, pressure drop, and catalysis measurements reveal that the 3D hierarchical nature of our printed nanoporous metals markedly improves mass transport and reaction rates for both liquids and gases. Our approach can be applied to a variety of alloy systems and has the potential to revolutionize the design of (electro-)chemical plants by changing the scaling relations between volume and catalyst surface area.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Sci Adv Year: 2018 Document type: Article Affiliation country: Estados Unidos Country of publication: Estados Unidos

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Sci Adv Year: 2018 Document type: Article Affiliation country: Estados Unidos Country of publication: Estados Unidos