论文标题

数据驱动的分子照片开关发现具有多输出高斯流程

Data-Driven Discovery of Molecular Photoswitches with Multioutput Gaussian Processes

论文作者

Griffiths, Ryan-Rhys, Greenfield, Jake L., Thawani, Aditya R., Jamasb, Arian R., Moss, Henry B., Bourached, Anthony, Jones, Penelope, McCorkindale, William, Aldrick, Alexander A., Lee, Matthew J. Fuchter Alpha A.

论文摘要

可拍照的分子显示了可以使用光访问的两个或多个异构体形式。将这些异构体的电子吸收带分开是选择性解决特定异构体并达到高光稳态状态的关键,同时总体红色转移吸收带可以限制因紫外线暴露而限制物质损害,并增加了光疗法应用中的渗透深度。但是,通过合成设计将这些属性工程为系统仍然是一个挑战。在这里,我们提出了一条数据驱动的发现管道,用于由数据集策划和使用高斯过程的多任务学习支撑的分子照片开关。在对电子过渡波长的预测中,我们证明了使用来自四个Photoswitch跃迁波长的标签训练的多输出高斯工艺(MOGP),相对于单任务模型而言,相对于单个任务模型而言,具有最强的预测性能,并且在操作上超过了时间依赖性密度函数理论(TD-DDFT),以预测时间来预测时间。我们通过筛选可商购的可拍照分子库来实验验证我们提出的方法。通过此屏幕,我们确定了几个图案,这些基序显示了它们的异构体的分离电子吸收带,表现出红移的吸收,并且适用于信息传递和光电学应用。我们精选的数据集,代码以及所有型号均可在https://github.com/ryan-rhys/the-photoswitch-dataset上提供

Photoswitchable molecules display two or more isomeric forms that may be accessed using light. Separating the electronic absorption bands of these isomers is key to selectively addressing a specific isomer and achieving high photostationary states whilst overall red-shifting the absorption bands serves to limit material damage due to UV-exposure and increases penetration depth in photopharmacological applications. Engineering these properties into a system through synthetic design however, remains a challenge. Here, we present a data-driven discovery pipeline for molecular photoswitches underpinned by dataset curation and multitask learning with Gaussian processes. In the prediction of electronic transition wavelengths, we demonstrate that a multioutput Gaussian process (MOGP) trained using labels from four photoswitch transition wavelengths yields the strongest predictive performance relative to single-task models as well as operationally outperforming time-dependent density functional theory (TD-DFT) in terms of the wall-clock time for prediction. We validate our proposed approach experimentally by screening a library of commercially available photoswitchable molecules. Through this screen, we identified several motifs that displayed separated electronic absorption bands of their isomers, exhibited red-shifted absorptions, and are suited for information transfer and photopharmacological applications. Our curated dataset, code, as well as all models are made available at https://github.com/Ryan-Rhys/The-Photoswitch-Dataset

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