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Mechanisms of ultralow and anisotropic thermal expansion in cordierite Mg 2 Al 4 Si 5 O 18 : Insight from phonon behaviors
Author(s) -
Li Yiran,
Wang Jiemin,
Sun Luchao,
Wang Jingyang
Publication year - 2018
Publication title -
journal of the american ceramic society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.9
H-Index - 196
eISSN - 1551-2916
pISSN - 0002-7820
DOI - 10.1111/jace.15708
Subject(s) - thermal expansion , negative thermal expansion , materials science , thermal shock , anisotropy , cordierite , phonon , ceramic , condensed matter physics , work (physics) , transverse plane , composite material , thermodynamics , optics , physics , structural engineering , engineering
Abstract Materials with negative or ultralow thermal expansion are of crucial importance for technological applications since they make it possible to tailor the coefficient of thermal expansion ( CTE ) of composite to a specific positive, negative or even zero value. In this work, first‐principle calculations were performed to investigate the thermal expansion behavior in cordierite Mg 2 Al 4 Si 5 O 18 , which is a representative silicate widely used in the ceramic industry and of promising application due to its ultralow CTE and good thermal shock resistance. According to the quasi‐harmonic approximation and the Grüneisen theory, temperature dependences of linear CTE s along a , b , and c directions were predicted. The transverse acoustic modes and low‐energy optic modes are identified to take the most of the responsibility for the negative CTE , especially at low temperatures while the high‐energy optic modes contribute positively to the thermal expansion, leading to increasing CTE at higher temperatures. The ultralow linear CTE s result from the weighted average of all the modal contributions with negative or positive Grüneisen parameters. In addition, the anisotropy of thermal expansion originates from its layered crystal structure containing rigid tetrahedron rings in a ‐ b plane staking along c direction. This work provides an insight into the mechanism of ultralow and anisotropic thermal expansion in Mg 2 Al 4 Si 5 O 18 and further enriches the scope of material design for use in applications needing to control thermal expansion.

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