
Scientists at Johannes Gutenberg University Mainz (JGU) and the Max Planck Institute for Polymer Research (MPI-P) in Germany have created a new synthetic hybrid material with a mineral content of almost 90 percent, yet extremely flexible.
They imitated the structural elements found in most sea sponges and recreated the sponge spicules using the natural mineral calcium carbonate and a protein of the sponge. Natural minerals are usually very hard and prickly, as fragile as porcelain. Amazingly, the synthetic spicules are superior to their natural counterparts in terms of flexibility, exhibiting a rubber-like flexibility.
The synthetic spicules can, for example, easily be U-shaped without breaking or showing any signs of fracture This highly unusual characteristic, described by the German researchers in the current issue of Science, is mainly due to the part of organic substances in the new hybrid material. It is about ten times as much as in natural spicules.
Spicules are structural elements found in most sea sponges. They provide structural support and deter predators. They are very hard, prickly, and even quite difficult to cut with a knife. The spicules of sponges thus offer a perfect example of a lightweight, tough, and impenetrable defense system, which may inspire engineers to create body armors of the future.
The researchers led by Wolfgang Tremel, Professor at Johannes Gutenberg University Mainz, and Hans-Jürgen Butt, Director at the Max Planck Institute for Polymer Research in Mainz, used these natural sponge spicules as a model to cultivate them in the lab. The synthetic spicules were made from calcite (CaCO3) and silicatein-α. The latter is a protein from siliceous sponges that, in nature, catalyzes the formation of silica, which forms the natural silica spicules of sponges. Silicatein-α was used in the lab setting to control the self-organization of the calcite spicules. The synthetic material was self-assembled from an amorphous calcium carbonate intermediate and silicatein and subsequently aged to the final crystalline material. After six months, the synthetic spicules consisted of calcite nanocrystals aligned in a brick wall fashion with the protein embedded like cement in the boundaries between the calcite nanocrystals. The spicules were of 10 to 300 micrometers in length with a diameter of 5 to 10 micrometers.
As the scientists, among them chemists, polymer researchers, and the molecular biologist Professor Werner E. G. Müller from the Mainz University Medical Center, also write in their Science publication, the synthetic spicules have yet another special characteristic, i.e., they are able to transmit light waves even when they are bent.
Images:
http://www.uni-mainz.de/bilder_presse/09_anorganische_chemie_flexmin1.jpg
The fracture properties of spicules were probed with a micromanipulator and recorded in-situ with a scanning electron microscope for natural (i-vi) and synthetic spicules (vii-xii). The synthetic spicule (vii-xii) did not fracture even under extreme loading and deformation conditions (xi) that lead to plastic deformation.
source: Work group Tremel, JGU
http://www.uni-mainz.de/bilder_presse/09_anorganische_chemie_flexmin2.jpg
The nanometer size of the calcite bricks facilitates bending of the synthetic spicules. The radius of curvature upon bending is very large compared to the size of the individual particles. This prevents a fracture of the brittle mineral bricks.
source: Work group Tremel, JGU
Publication:
Filipe Natalio, Tomas P. Corrales, Martin Panthöfer, Dieter Schollmeyer, Ingo Lieberwirth, Werner E. G. Müller, Michael Kappl, Hans-Jürgen Butt and Wolfgang Tremel
Flexible Minerals: Self-Assembled Calcite Spicules with Extreme Bending Strength
Science, 15 March 2013
DOI: 10.1126/science.1216260
http://www.sciencemag.org/content/339/6125/1298
Contact and further information:
Professor Dr. Wolfgang Tremel
Institute of Inorganic Chemistry and Analytical Chemistry
Johannes Gutenberg University Mainz (JGU)
D 55099 Mainz, GERMANY
phone +49 6131 39-25135
fax +49 6131 39-25605
e-mail: tremel@uni-mainz.de
http://www.ak-tremel.chemie.uni-mainz.de/index.php
Professor Dr. Hans-Jürgen Butt
Max Planck Institute of Polymer Research
Ackermannweg 12
D 55128 Mainz, GERMANY
e-mail: butt@mpip-mainz.mpg.de
http://www.mpic.de/en/research/biogeochemistry/group-jochum.html
Related links:
http://www.youtube.com/watch?v=XNleh50Ug_k
Petra Giegerich | Source: Informationsdienst Wissenschaft
Further information: www.uni-mainz.de/presse/16247_ENG_HTML.php
www.sciencemag.org/content/339/6125/1298
Further Reports about: calcium carbonate > deep sea sponges > flexible minerals > Hybrid Material > Inspired > Max Planck Institute > natural sea sponges > polymer research > Polymere > sea sponge
More articles from Materials Sciences:
Printing Tiny Batteries
19.06.2013 | Wyss Institute for Biologically Inspired Engineering at Harvard
Printing artificial bone
18.06.2013 | Massachusetts Institute of Technology
- Biological fermentation process converts CO and CO2 into bioethanol and platform chemicals
- Process uses energy contained in steel plant off-gases
- Ten-year co-operation to develop and market integrated environmental solutions for the steel industry worldwide
Siemens Metals Technologies and LanzaTech have signed a ten-year co-operation agreement to develop and market integrated environmental solutions for the steel industry worldwide. The collaboration will utilize the ground-breaking fermentation technology developed by LanzaTech transforming carbon-rich off-gases generated by the steel industry into low carbon bioethanol and other platform chemicals. ...
Novel application of 3D printing could enable the development of miniaturized medical implants, compact electronics, tiny robots, and more
3D printing can now be used to print lithium-ion microbatteries the size of a grain of sand. The printed microbatteries could supply electricity to tiny devices in fields from medicine to communications, including many that have lingered on lab benches for lack of a battery small enough to fit the ...
... two engines aircraft project “Elektro E6”.
The countdown has been started for opening the gates again for the worldwide leading aviation and space event in Le Bourget, Paris from June 17th - 23rd, 2013.
EADCO & PC-Aero will present at the Paris Air Show in Hall H4 booth F-7 their new future aircraft and innovative project: ...
Siemens scientists have developed new kinds of ceramics in which they can embed transformers.
The new development allows power supply transformers to be reduced to one fifth of their current size so that the normally separate switched-mode power supply units of light-emitting diodes can be integrated into the module's heat sink.
The new technology was developed in cooperation with industrial and research partners who ...
Cheaper clean-energy technologies could be made possible thanks to a new discovery.
Led by Raymond Schaak, a professor of chemistry at Penn State University, research team members have found that an important chemical reaction that generates hydrogen from water is effectively triggered -- or catalyzed -- by a nanoparticle composed of nickel and phosphorus, two inexpensive elements that are abundant on Earth. ...
19.06.2013 | Life Sciences
Rice blast research reveals details on how a fungus invades plants
19.06.2013 | Agricultural and Forestry Science
Gel or whitening? Consumer choice and product organization
19.06.2013 | Studies and Analyses
International Symposium on Morphogenesis
14.06.2013 | Event News
ESMT Annual Forum: CEOs discuss “The Future of Jobs” with international academics and policymakers
13.06.2013 | Event News
Invitation: Mathematics for Industry and Society in the French Embassy Berlin, 04. - 05.07.2013
10.06.2013 | Event News