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Hydroxyl-rich macromolecules enable the bio-inspired synthesis of single crystal nanocomposites

Kim, Y-Y; Darkins, R; Broad, A; Kulak, AN; Holden, MA; Nahi, O; Armes, SP; ... Meldrum, FC; + view all (2019) Hydroxyl-rich macromolecules enable the bio-inspired synthesis of single crystal nanocomposites. Nature communications , 10 , Article 5682. 10.1038/s41467-019-13422-9. Green open access

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Abstract

Acidic macromolecules are traditionally considered key to calcium carbonate biomineralisation and have long been first choice in the bio-inspired synthesis of crystalline materials. Here, we challenge this view and demonstrate that low-charge macromolecules can vastly outperform their acidic counterparts in the synthesis of nanocomposites. Using gold nanoparticles functionalised with low charge, hydroxyl-rich proteins and homopolymers as growth additives, we show that extremely high concentrations of nanoparticles can be incorporated within calcite single crystals, while maintaining the continuity of the lattice and the original rhombohedral morphologies of the crystals. The nanoparticles are perfectly dispersed within the host crystal and at high concentrations are so closely apposed that they exhibit plasmon coupling and induce an unexpected contraction of the crystal lattice. The versatility of this strategy is then demonstrated by extension to alternative host crystals. This simple and scalable occlusion approach opens the door to a novel class of single crystal nanocomposites.

Type: Article
Title: Hydroxyl-rich macromolecules enable the bio-inspired synthesis of single crystal nanocomposites
Open access status: An open access version is available from UCL Discovery
DOI: 10.1038/s41467-019-13422-9
Publisher version: https://doi.org/10.1038/s41467-019-13422-9
Language: English
Additional information: This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
UCL classification: UCL
UCL > Provost and Vice Provost Offices > UCL BEAMS
UCL > Provost and Vice Provost Offices > UCL BEAMS > Faculty of Maths and Physical Sciences
UCL > Provost and Vice Provost Offices > UCL BEAMS > Faculty of Maths and Physical Sciences > London Centre for Nanotechnology
URI: https://discovery.ucl.ac.uk/id/eprint/10088478
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