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甘氨酸与氨基磺酸的压电离子共晶体。

A Piezoelectric Ionic Cocrystal of Glycine and Sulfamic Acid.

作者信息

Guerin Sarah, Khorasani Sanaz, Gleeson Matthew, O'Donnell Joseph, Sanii Rana, Zwane Reabetswe, Reilly Anthony M, Silien Christophe, Tofail Syed A M, Liu Ning, Zaworotko Michael, Thompson Damien

机构信息

SSPC, Science Foundation Ireland Research Centre for Pharmaceuticals, University of Limerick, V94 T9PX Limerick, Ireland.

Department of Physics, Bernal Institute, University of Limerick, V94 T9PX Limerick, Ireland.

出版信息

Cryst Growth Des. 2021 Oct 6;21(10):5818-5827. doi: 10.1021/acs.cgd.1c00702. Epub 2021 Sep 27.

Abstract

Cocrystallization of two or more molecular compounds can dramatically change the physicochemical properties of a functional molecule without the need for chemical modification. For example, coformers can enhance the mechanical stability, processability, and solubility of pharmaceutical compounds to enable better medicines. Here, we demonstrate that amino acid cocrystals can enhance functional electromechanical properties in simple, sustainable materials as exemplified by glycine and sulfamic acid. These coformers crystallize independently in centrosymmetric space groups when they are grown as single-component crystals but form a noncentrosymmetric, electromechanically active ionic cocrystal when they are crystallized together. The piezoelectricity of the cocrystal is characterized using techniques tailored to overcome the challenges associated with measuring the electromechanical properties of soft (organic) crystals. The piezoelectric tensor of the cocrystal is mapped using density functional theory (DFT) computer models, and the predicted single-crystal longitudinal response of 2 pC/N is verified using second-harmonic generation (SHG) and piezoresponse force microscopy (PFM). The experimental measurements are facilitated by polycrystalline film growth that allows for macroscopic and nanoscale quantification of the longitudinal out-of-plane response, which is in the range exploited in piezoelectric technologies made from quartz, aluminum nitride, and zinc oxide. The large-area polycrystalline film retains a damped response of ≥0.2 pC/N, indicating the potential for application of such inexpensive and eco-friendly amino acid-based cocrystal coatings in, for example, autonomous ambient-powered devices in edge computing.

摘要

两种或更多种分子化合物的共结晶可以显著改变功能分子的物理化学性质,而无需进行化学修饰。例如,共形成物可以增强药物化合物的机械稳定性、可加工性和溶解性,从而生产出更好的药物。在此,我们证明氨基酸共晶体可以增强简单、可持续材料中的功能机电性能,甘氨酸和氨基磺酸就是例证。这些共形成物在作为单一组分晶体生长时,会在中心对称空间群中独立结晶,但当它们一起结晶时,会形成非中心对称的、具有机电活性的离子共晶体。使用专门设计的技术来表征共晶体的压电性,以克服与测量软(有机)晶体的机电性能相关的挑战。利用密度泛函理论(DFT)计算机模型绘制共晶体的压电张量,并使用二次谐波产生(SHG)和压电响应力显微镜(PFM)验证预测的2 pC/N的单晶纵向响应。多晶膜生长有助于进行实验测量,从而实现对纵向平面外响应的宏观和纳米级量化,该响应处于由石英、氮化铝和氧化锌制成的压电技术所利用的范围内。大面积多晶膜保留了≥0.2 pC/N的阻尼响应,这表明这种廉价且环保的基于氨基酸的共晶体涂层在例如边缘计算中的自主环境供电设备等方面具有应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd8a/8498985/a25c52ad0e64/cg1c00702_0001.jpg

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