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Expanding quasiperiodicity in soft matter: Supramolecular decagonal quasicrystals by binary giant molecule blends.


ABSTRACT: The quasiperiodic structures in metal alloys have been known to depend on the existence of icosahedral order in the melt. Among different phases observed in intermetallics, decagonal quasicrystal (DQC) structures have been identified in many glass-forming alloys yet remain inaccessible in bulk-state condensed soft matters. Via annealing the mixture of two giant molecules, the binary system assemblies into an axial DQC superlattice, which is identified comprehensively with meso-atomic accuracy. Analysis indicates that the DQC superlattice is composed of mesoatoms with an unusually broad volume distribution. The interplays of submesoatomic (molecular) and mesoatomic (supramolecular) local packings are found to play a crucial role in not only the formation of the metastable DQC superlattice but also its transition to dodecagonal quasicrystal and Frank-Kasper σ superlattices.

SUBMITTER: Liu Y 

PROVIDER: S-EPMC8784096 | biostudies-literature | 2022 Jan

REPOSITORIES: biostudies-literature

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Expanding quasiperiodicity in soft matter: Supramolecular decagonal quasicrystals by binary giant molecule blends.

Liu Yuchu Y   Liu Tong T   Yan Xiao-Yun XY   Guo Qing-Yun QY   Lei Huanyu H   Huang Zongwu Z   Zhang Rui R   Wang Yu Y   Wang Jing J   Liu Feng F   Bian Feng-Gang FG   Meijer E W EW   Aida Takuzo T   Huang Mingjun M   Cheng Stephen Z D SZD  

Proceedings of the National Academy of Sciences of the United States of America 20220101 3


The quasiperiodic structures in metal alloys have been known to depend on the existence of icosahedral order in the melt. Among different phases observed in intermetallics, decagonal quasicrystal (DQC) structures have been identified in many glass-forming alloys yet remain inaccessible in bulk-state condensed soft matters. Via annealing the mixture of two giant molecules, the binary system assemblies into an axial DQC superlattice, which is identified comprehensively with meso-atomic accuracy. A  ...[more]

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