Bolm Carsten, Hernández José G
Institute of Organic Chemistry, RWTH Aachen University, Landoltweg 1, 52074, Aachen, Germany.
Angew Chem Int Ed Engl. 2019 Mar 11;58(11):3285-3299. doi: 10.1002/anie.201810902. Epub 2019 Jan 17.
In recent years, the application of mechanical energy to chemical systems has repeatedly proven beneficial to facilitate chemical transformations in various areas in chemistry. Today, a systematic body of evidence indicates that mechanochemistry holds great promise to become a game-changer in chemical synthesis. Not only does mechanochemistry permit access to products that are inaccessible by established means (e.g. purely thermal activation), mechanochemical reactions often outperform their solution-based counterparts in terms of sustainability. Most mechanochemical reactions carried out by ball milling techniques involve transformations of solids and liquids, but the number of mechanochemical reactions with gaseous reactants is increasing. The aim of this Minireview is to provide an overview of recent chemical reactions involving gaseous samples by ball milling techniques and to highlight advances in ball milling technology for the safe handling of gaseous reagents. Examples of reactions proceeding at the interface of solid-/liquid-/gas-gas systems that led to significant improvements in reactivity or selectivity will also be highlighted.
近年来,将机械能应用于化学体系已多次证明有助于促进化学领域各个方面的化学转化。如今,一系列系统的证据表明,机械化学极有可能成为化学合成中的变革力量。机械化学不仅能获得通过传统方法(如单纯热活化)无法得到的产物,而且在可持续性方面,机械化学反应通常优于基于溶液的同类反应。大多数通过球磨技术进行的机械化学反应涉及固体和液体的转化,但涉及气态反应物的机械化学反应数量正在增加。本微型综述的目的是概述近期通过球磨技术涉及气态样品的化学反应,并强调球磨技术在安全处理气态试剂方面的进展。还将重点介绍在固/液/气 - 气体系界面发生的反应实例,这些反应在反应性或选择性方面有显著提高。