| Literature DB >> 33462429 |
Jianbo Tang1, Stephanie Lambie2, Nastaran Meftahi3, Andrew J Christofferson4, Jiong Yang5, Mohammad B Ghasemian5, Jialuo Han5, Francois-Marie Allioux5, Md Arifur Rahim5, Mohannad Mayyas5, Torben Daeneke6, Chris F McConville4,7, Krista G Steenbergen8, Richard B Kaner9,10, Salvy P Russo3, Nicola Gaston11, Kourosh Kalantar-Zadeh12.
Abstract
It is well-understood that during the liquid-to-solid phase transition of alloys, elements segregate in the bulk phase with the formation of microstructures. In contrast, we show here that in a Bi-Ga alloy system, highly ordered nanopatterns emerge preferentially at the alloy surfaces during solidification. We observed a variety of transition, hybrid and crystal-defect-like patterns, in addition to lamellar and rod-like structures. Combining experiments and molecular dynamics simulations, we investigated the influence of the superficial Bi and Ga2O3 layers during surface solidification and elucidated the pattern-formation mechanisms, which involve surface-catalysed heterogeneous nucleation. We further demonstrated the dynamic nature and robustness of the phenomenon under different solidification conditions and for various alloy systems. The surface patterns we observed enable high-spatial-resolution nanoscale-infrared and surface-enhanced Raman mapping, which reveal promising potential for surface- and nanoscale-based applications.Entities:
Year: 2021 PMID: 33462429 DOI: 10.1038/s41565-020-00835-7
Source DB: PubMed Journal: Nat Nanotechnol ISSN: 1748-3387 Impact factor: 39.213