利用高通量实验推进有机化学

Reem Nsouli, Gaurav Galiyan, Prof. Laura K. G. Ackerman-Biegasiewicz
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引用次数: 0

摘要

高通量实验(HTE),反应的小型化和并行化,是加速多种化合物库生成、优化反应条件和为机器学习(ML)应用提供数据收集的宝贵工具。当应用于有机合成和方法论时,由于不同的工作流程和所需的试剂,HTE仍然面临各种挑战,推动了反应设计,执行,分析和数据管理的进步。为了解决这些限制,已经实施了尖端技术,自动化和人工智能(AI)来标准化协议,增强可重复性并提高效率。此外,减少偏见和促进偶然发现的策略进一步加强了高通量研究的影响。本综述强调了HTE工作流程每个阶段的最新进展,包括定制工作流程的开发、多样化的分析和改进的数据管理实践,以提高可访问性和可共享性。此外,我们研究了该领域的现状,突出的挑战,以及将HTE转变为一个完全集成,灵活和民主化的平台的未来方向,以推动有机合成的创新。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Advancing Organic Chemistry Using High-Throughput Experimentation

Advancing Organic Chemistry Using High-Throughput Experimentation

High-throughput experimentation (HTE), the miniaturization and parallelization of reactions, is a valuable tool for accelerating diverse compound library generation, optimizing reaction conditions, and enabling data collection for machine learning (ML) applications. When applied to organic synthesis and methodology, HTE still poses various challenges due to the diverse workflows and reagents required, motivating advancements in reaction design, execution, analysis, and data management. To address these limitations, cutting-edge technologies, automation, and artificial intelligence (AI) have been implemented to standardize protocols, enhance reproducibility, and improve efficiency. Additionally, strategies to reduce bias and promote serendipitous discoveries have further strengthened HTE's impact. This review highlights recent advances at every stage of the HTE workflow, including the development of customized workflows, diverse analysis, and improved data management practices for greater accessibility and shareability. Furthermore, we examine the current state of the field, outstanding challenges, and future directions toward transforming HTE into a fully integrated, flexible, and democratized platform that drives innovation in organic synthesis.

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来源期刊
Angewandte Chemie
Angewandte Chemie 化学科学, 有机化学, 有机合成
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