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Amorphous 1-D nanowires of calcium phosphate/pyrophosphate: A demonstration of oriented self-growth of amorphous minerals.

Authors :
Feng, Chaobo
Lu, Bing-Qiang
Fan, Yunshan
Ni, Haijian
Zhao, Yunfei
Tan, Shuo
Zhou, Zhi
Liu, Lijia
Hachtel, Jordan A.
Kepaptsoglou, Demie
Wu, Baohu
Gebauer, Denis
He, Shisheng
Chen, Feng
Source :
Journal of Colloid & Interface Science. Mar2024, Vol. 657, p960-970. 11p.
Publication Year :
2024

Abstract

[Display omitted] Amorphous inorganic solids are traditionally isotropic, thus, it is believed that they only grow in a non-preferential way without the assistance of regulators, leading to the morphologies of nanospheres or irregular aggregates of nanoparticles. However, in the presence of (ortho)phosphate (Pi) and pyrophosphate ions (PPi) which have synergistic roles in biomineralization, the highly elongated amorphous nanowires (denoted ACPPNs) form in a regulator-free aqueous solution (without templates, additives, organics, etc). Based on thorough characterization and tracking of the formation process (e.g., Cryo-TEM, spherical aberration correction high resolution TEM, solid state NMR, high energy resolution monochromated STEM-EELS), the microstructure and its preferential growth behavior are elucidated. In ACPPNs, amorphous calcium orthophosphate and amorphous calcium pyrophosphate are distributed at separated but close sites. The ACPPNs grow via either the preferential attachment of ∼2 nm nanoclusters in a 1-dimension way, or the transformation of bigger nanoparticles, indicating an inherent driving force-governed process. We propose that the anisotropy of ACPPNs microstructure, which is corroborated experimentally, causes their oriented growth. This study proves that, unlike the conventional view, amorphous minerals can form via oriented growth without external regulation, demonstrating a novel insight into the structures and growth behaviors of amorphous minerals. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219797
Volume :
657
Database :
Academic Search Index
Journal :
Journal of Colloid & Interface Science
Publication Type :
Academic Journal
Accession number :
174528039
Full Text :
https://doi.org/10.1016/j.jcis.2023.12.002