有机硅
铁电性
材料科学
硅烷
相变
组分(热力学)
单晶
纳米技术
电介质
化学工程
结晶学
光电子学
高分子化学
化学
复合材料
凝聚态物理
热力学
工程类
物理
作者
Hang Peng,Hang Z. Yu,Shuyu Tang,Yu‐Ling Zeng,Peng‐Fei Li,Yuan‐Yuan Tang,Zhi‐Xu Zhang,Ren‐Gen Xiong,Han‐Yue Zhang
出处
期刊:JACS Au
[American Chemical Society]
日期:2023-02-12
卷期号:3 (2): 603-609
被引量:10
标识
DOI:10.1021/jacsau.3c00004
摘要
Organic single-component ferroelectrics are highly desirable for their low molecular mass, light weight, low processing temperature, and excellent film-forming properties. Organosilicon materials with a strong film-forming ability, weather resistance, nontoxicity, odorlessness, and physiological inertia are very suitable for device applications related to the human body. However, the discovery of high-Tc organic single-component ferroelectrics has been very scarce, and the organosilicon ones even less so. Here, we used a chemical design strategy of H/F substitution to successfully synthesize a single-component organosilicon ferroelectric tetrakis(4-fluorophenylethynyl)silane (TFPES). Systematic characterizations and theory calculations revealed that, compared with the parent nonferroelectric tetrakis(phenylethynyl)silane, fluorination caused slight modifications of the lattice environment and intermolecular interactions, inducing a 4/mmmFmm2-type ferroelectric phase transition at a high Tc of 475 K in TFPES. To our knowledge, this Tc should be the highest among the reported organic single-component ferroelectrics, providing a wide operating temperature range for ferroelectrics. Moreover, fluorination also brought about a significant improvement in the piezoelectric performance. Combined with excellent film properties, the discovery of TFPES provides an efficient path for designing ferroelectrics suitable for biomedical and flexible electronic devices.
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