Extreme biomimetics: A carbonized 3D spongin scaffold as a novel support for nanostructured manganese oxide(IV) and its electrochemical applications
Creators
- Szatkowski, Tomasz1
- Kopczyński, Kacper2
- Motylenko, Mykhailo3
- Borrmann, Horst4
- Mania, Beata1
- Graś, Małgorzata2
- Lota, Grzegorz2
- Bazhenov, Vasilii V.5
- Rafaja, David3
- Roth, Friedrich5
- Weise, Juliane5
- Langer, Enrico6
- Wysokowski, Marcin1
- Żółtowska-Aksamitowska, Sonia1
- Petrenko, Iaroslav5
- Molodtsov, Serguei L.5
- Hubálková, Jana7
- Aneziris, Christos G.7
- Joseph, Yvonne8
- Stelling, Allison L.9
- and others
- 1. Poznan University of Technology, Institute of Chemical Technology and Engineering, Faculty of Chemical Technology (Poland)
- 2. Poznan University of Technology, Institute of Chemistry and Technical Electrochemistry (Poland)
- 3. TU Bergakademie Freiberg, Institute of Materials Science (Germany)
- 4. Max Planck Institute for Chemical Physics of Solids (Germany)
- 5. TU Bergakademie Freiberg, Institute of Experimental Physics (Germany)
- 6. TU Dresden, Institute of Semiconductors and Microsystems, Polymere Mikrosysteme (Germany)
- 7. TU Bergakademie, Institute of Ceramic, Glass and Constructions Materials (Germany)
- 8. TU Bergakademie Freiberg, Institute of Electronics and Sensor Materials (Germany)
- 9. Duke University Medical School, Department of Biochemistry (United States)
Description
Composites containing biological materials with nanostructured architecture have become of great interest in modern materials science, yielding both interesting chemical properties and inspiration for biomimetic research. Herein, we describe the preparation of a novel 3D nanostructured MnO2-based composite developed using a carbonized proteinaceous spongin template by an extreme biomimetics approach. The thermal stability of the spongin-based scaffold facilitated the formation of both carbonized material (at 650 °C with exclusion of oxygen) and manganese oxide with a defined nanoscale structure under 150 °C. Remarkably, the unique network of spongin fibers was maintained after pyrolysis and hydrothermal processing, yielding a novel porous support. The MnO2-spongin composite shows a bimodal pore distribution, with macropores originating from the spongin network and mesopores from the nanostructured oxidic coating. Interestingly, the composites also showed improved electrochemical properties compared to those of MnO2. Voltammetry cycling demonstrated the good stability of the material over more than 3,000 charging/discharging cycles. Additionally, electrochemical impedance spectroscopy revealed lower charge transfer resistance in the prepared materials. We demonstrate the potential of extreme biomimetics for developing a new generation of nanostructured materials with 3D centimeter-scale architecture for the storage and conversion of energy generated from renewable natural sources. .
Additional details
Identifiers
Publishing Information
- Journal Title
- Nano Research (Print)
- Journal Volume
- 11
- Journal Issue
- 8
- Journal Page Range
- p. 4199-4214
- ISSN
- 1998-0124
INIS
- Country of Publication
- China
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 51019951
- Subject category
- S77: NANOSCIENCE AND NANOTECHNOLOGY;
- Descriptors DEI
- BIOLOGICAL MATERIALS; CHEMICAL PROPERTIES; ELECTROCHEMISTRY; ENERGY STORAGE; FIBERS; HYDROTHERMAL SYNTHESIS; MANGANESE OXIDES; NANOSTRUCTURES; OXYGEN; POROUS MATERIALS; PYROLYSIS; SPECTROSCOPY; SURFACE COATING; VOLTAMETRY
- Descriptors DEC
- CHALCOGENIDES; CHEMICAL REACTIONS; CHEMISTRY; DECOMPOSITION; DEPOSITION; ELEMENTS; MANGANESE COMPOUNDS; MATERIALS; NONMETALS; OXIDES; OXYGEN COMPOUNDS; STORAGE; SYNTHESIS; THERMOCHEMICAL PROCESSES; TRANSITION ELEMENT COMPOUNDS
Optional Information
- Copyright
- Copyright (c) 2018 Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature