论文标题
具有针对性特性的无机晶体的一般反向设计的可逆晶体学表示
An invertible crystallographic representation for general inverse design of inorganic crystals with targeted properties
论文作者
论文摘要
实现一般的逆设计可能会大大加速具有用户定义属性的新材料。但是,最先进的生成模型往往仅限于特定的组成或晶体结构。在本文中,我们提出了一个能够进行一般逆设计的框架(不限于给定的一组元素或晶体结构),其中具有广义的可逆表示形式,该表示均可编码真实和相互空间中的晶体,以及从变化自动装编码器(VAE)的属性结构的潜在潜在空间。在三种设计案例中,该框架生成142个新晶体,具有用户定义的地层能,带隙,热电(TE)功率因数及其组合。这些生成的晶体在训练数据库中没有,通过第一原理计算验证。成功率(第一原理验证的靶标晶体的数量/设计晶体的数量)在7.1%至38.9%之间。这些结果代表了使用生成模型朝着以物业为导向的一般逆设计迈出的重要一步,尽管与实验合成相结合时,实际挑战仍然存在。
Realizing general inverse design could greatly accelerate the discovery of new materials with user-defined properties. However, state-of-the-art generative models tend to be limited to a specific composition or crystal structure. Herein, we present a framework capable of general inverse design (not limited to a given set of elements or crystal structures), featuring a generalized invertible representation that encodes crystals in both real and reciprocal space, and a property-structured latent space from a variational autoencoder (VAE). In three design cases, the framework generates 142 new crystals with user-defined formation energies, bandgap, thermoelectric (TE) power factor, and combinations thereof. These generated crystals, absent in the training database, are validated by first-principles calculations. The success rates (number of first-principles-validated target-satisfying crystals/number of designed crystals) ranges between 7.1% and 38.9%. These results represent a significant step toward property-driven general inverse design using generative models, although practical challenges remain when coupled with experimental synthesis.