Creating Directionality in Nanoporous Carbon Materials: Adjustable Combinations of Structural and Chemical Gradients

Research output: Contribution to journalArticleResearchpeer review

Authors

  • Jochen Bahner
  • Nele Klinkenberg
  • Marvin Frisch
  • Lilly Brauchle
  • Sebastian Polarz

External Research Organisations

  • University of Konstanz
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Details

Original languageEnglish
Article number1904058
JournalAdvanced functional materials
Volume29
Issue number44
Early online date29 Aug 2019
Publication statusPublished - 29 Oct 2019
Externally publishedYes

Abstract

The properties of porous materials benefit from hierarchical porosity. A less noted element of hierarchy is the occurrence of directionality in functional gradient materials. A sharp boundary is replaced by a transition from one feature to the next. The number of cases known for porous materials with either structural or chemical gradients is small. A method capable of generating combinations of structural and chemical gradients in one material does not exist. Such a method is presented with a focus on silver and nitrogen containing carbon materials because of the potential of this system for electrocatalytic CO 2 reduction. A structural gradient results from controlled separation using ultracentrifugation of a binary mixture of template particles in a resorcinol–formaldehyde (RF) sol as carbon precursor. A new level of complexity can be reached, if the surfaces of the template particles are chemically modified. Although the template is removed during carbonization, the modification (Ag, N) becomes integrated into the material. Understanding how modified and unmodified large and small particles sediment in the RF sol enables almost infinite variability of combinations: chemically graded but structurally homogeneous materials and vice versa. Ultimately, a material containing one structural gradient and two chemical gradients with opposing directions is introduced.

Keywords

    aerogels, functional gradient materials, hierarchical porosity, surface modification, templates

ASJC Scopus subject areas

Cite this

Creating Directionality in Nanoporous Carbon Materials: Adjustable Combinations of Structural and Chemical Gradients. / Bahner, Jochen; Klinkenberg, Nele; Frisch, Marvin et al.
In: Advanced functional materials, Vol. 29, No. 44, 1904058, 29.10.2019.

Research output: Contribution to journalArticleResearchpeer review

Bahner J, Klinkenberg N, Frisch M, Brauchle L, Polarz S. Creating Directionality in Nanoporous Carbon Materials: Adjustable Combinations of Structural and Chemical Gradients. Advanced functional materials. 2019 Oct 29;29(44):1904058. Epub 2019 Aug 29. doi: 10.1002/adfm.201904058
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