Abstract
AbstractChemical gardens are an example of a chemobrionic system that typically result in abiotic macro-, micro- and nano- material architectures, with formation driven by complex out-of-equilibrium reaction mechanisms. From a technological perspective, controlling chemobrionic processes may hold great promise for the creation of novel, compositionally diverse and ultimately, useful materials and devices. In this work, we engineer an innovative custom-built liquid exchange unit that enables us to control the formation of tubular chemical garden structures grown from the interface between calcium loaded hydrogel and phosphate solution. We show that systematic displacement of phosphate solution with water (H2O) can halt self-assembly, precisely control tube height and purify structures in situ. Furthermore, we demonstrate the fabrication of a heterogeneous chemobrionic composite material composed of aligned, high-aspect ratio calcium phosphate channels running through an otherwise dense matrix of poly(2-hydroxyethyl methacrylate) (pHEMA). Given that the principles we derive can be broadly applied to potentially control various chemobrionic systems, this work paves the way for fabricating multifunctional materials that may hold great potential in a variety of application areas, such as regenerative medicine, catalysis and microfluidics.
Funder
DH | National Institute for Health Research
Publisher
Springer Science and Business Media LLC
Subject
Materials Chemistry,Biochemistry,Environmental Chemistry,General Chemistry
Reference47 articles.
1. Glauber, J. R. Wie man in diesem Liquore von allen Metallen in wenig Stunden Bäume mit Farben soll wachsen machen. Furni Novi Philosophici 186–189 (1646).
2. Barge, L. M. et al. From chemical gardens to chemobrionics. Chem. Rev. 115, 8652–8703 (2015).
3. Haudin, F., Cartwright, J. H. E., Brau, F. & De Wit, A. Spiral precipitation patterns in confined chemical gardens. Proc. Natl. Acad. Sci. USA. 111, 17363–17367 (2014).
4. Haudin, F., Brasiliense, V., Cartwright, J. H. E., Brau, F. & De Wit, A. Genericity of confined chemical garden patterns with regard to changes in the reactants. Phys. Chem. Chem. Phys. 17, 12804–12811 (2015).
5. Batista, B. C. & Steinbock, O. Chemical gardens without silica: the formation of pure metal hydroxide tubes. Chem. Commun. 51, 12962–12965 (2015).
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