Abstract
AbstractAutonomous and out-of-equilibrium vesicles synthesised from small molecules in a homogeneous aqueous medium are an emerging class of dynamically self-assembled systems with considerable potential for engineering natural life mimics. Here we report on the physico-chemical mechanism behind a dynamic morphological evolution process through which self-assembled polymeric structures autonomously booted from a homogeneous mixture, evolve from micelles to giant vesicles accompanied by periodic growth and implosion cycles when exposed to oxygen under light irradiation. The system however formed nano-objects or gelation under poor oxygen conditions or when heated. We determined the cause to be photoinduced chemical degradation within hydrated polymer cores inducing osmotic water influx and the subsequent morphological dynamics. The process also led to an increase in the population of polymeric objects through system self-replication. This study offers a new path toward the design of chemically self-assembled systems and their potential application in autonomous material artificial simulation of living systems.
Publisher
Springer Science and Business Media LLC
Subject
Materials Chemistry,Biochemistry,Environmental Chemistry,General Chemistry
Reference64 articles.
1. Feynman, R. P. Simulating physics with computers. Int. J. Theor. Phys. 21, 467–488 (1982).
2. Smith, E. & Morowitz, H. J. The Origin and Nature of Life on Earth: the Emergence of the Fourth Geosphere (Cambridge University Press, 2016).
3. Sharpe, M. Introducing Biological Energetics: how Energy and Information Control the Living World (ed. Norman W. H. Cheetham) (Oxford University Press, 2010).
4. Volkenshtein, M. V. General Biophysics Vol. 1 (Academic Press Inc, Elsevier, 1983).
5. Lynch, M. The Origins of Genome Architecture (Sinauer Associates Inc, 2007).
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