Vishnoi Shubham, Kumari Geetu, Guest Robert, Cazade Pierre-André, Guerin Sarah
Department of Chemical Sciences, Bernal Institute, University of Limerick, Limerick, V94 T9PX, Ireland.
SSPC, The Research Ireland Research Centre for Pharmaceuticals, University of Limerick, Limerick, V94 T9PX, Ireland.
Angew Chem Int Ed Engl. 2025 Apr 25;64(18):e202501232. doi: 10.1002/anie.202501232. Epub 2025 Apr 2.
Organic molecular crystals are ideally placed to become next-generation piezoelectric materials due to their diverse chemistries that can be used to engineer tailor-made solid-state assemblies. Using crystal engineering principles and techniques such as cocrystallization, these materials can be engineered to have a wide range of electromechanical properties. For materials that have been structurally characterized by methods such as X-ray diffraction, computational chemistry is an effective tool to predict their electromechanical properties, allowing researchers to screen these molecular crystals and identify materials best suited to their chosen application. Here, we present our database of small molecular crystals and their density functional theory (DFT) predicted electromechanical properties, CrystalDFT (https://actuatelab.ie/CrystalDFT). We highlight the broad range of electromechanical properties amongst this primary dataset, and in particular, the high number of crystals that have a naturally occurring (unpoled) longitudinal piezoelectric response (d/d/d). This longitudinal electromechanical coupling is a prerequisite for several conventional sensing and energy harvesting applications, the presence of which is notably rare amongst the literature on biomolecular crystal piezoelectricity to date.
有机分子晶体因其多样的化学性质,能够用于设计定制的固态组件,因而非常适合成为下一代压电材料。利用晶体工程原理和技术,如共结晶,可以将这些材料设计成具有广泛的机电性能。对于已通过X射线衍射等方法进行结构表征的材料,计算化学是预测其机电性能的有效工具,使研究人员能够筛选这些分子晶体,并识别出最适合其选定应用的材料。在此,我们展示了我们的小分子晶体数据库及其密度泛函理论(DFT)预测的机电性能,即CrystalDFT(https://actuatelab.ie/CrystalDFT)。我们强调了这个主要数据集中广泛的机电性能,特别是大量具有天然(未极化)纵向压电响应(d/d/d)的晶体。这种纵向机电耦合是几种传统传感和能量收集应用的先决条件,而在迄今为止关于生物分子晶体压电性的文献中,这种耦合的存在极为罕见。