Ruđer Bošković Institute, Bijenička c. 54, 10000 Zagreb, Croatia.
Department of Mechanical, Chemical and Materials Engineering, University of Cagliari, CSGI Cagliari research unit, via Marengo 2, 09123 Cagliari, Italy.
Faraday Discuss. 2023 Jan 5;241(0):217-229. doi: 10.1039/d2fd00083k.
Inelastic collisions of the milling media in ball milling provide energy to the reaction mixture required for chemical transformations. However, movement of the milling media also results in physical mixing of reactants, which may enable a chemical reaction too. Separating the two contributions is challenging and gaining a direct insight into the purely mechanochemically driven reactivity is accordingly hindered. Here, we have applied reaction monitoring by Raman spectroscopy to a suitable, purely mechanically activated, chemical reaction and combined kinetic analysis with numerical simulations to access experimentally unattainable milling parameters. The breadth of milling conditions allows us to establish a linear relationship between the reaction rate and the energy dose received by the sample. Consequently, different kinetic profiles in time scale to the same profile when plotted against the energy dose, which increases with the ball mass, the average ball velocity and the frequency of impacts, but decreases with the hardness of the milling media due to more elastic collisions. The fundamental relationship between kinetics and energy input provides the basis for planning and optimisation of mechanochemical reactions and is essential for transferability of mechanochemical reactions across different milling platforms.
在球磨中,研磨介质的非弹性碰撞为化学反应所需的反应混合物提供能量。然而,研磨介质的运动也导致了反应物的物理混合,这也可能引发化学反应。将这两种贡献分开是具有挑战性的,因此难以直接了解纯粹由机械化学驱动的反应性。在这里,我们将拉曼光谱的反应监测应用于合适的、纯粹由机械激活的化学反应,并结合动力学分析和数值模拟来获取实验上无法获得的研磨参数。广泛的研磨条件使我们能够在样品接收的能量剂量与反应速率之间建立线性关系。因此,在时间尺度上的不同动力学曲线与当绘制为能量剂量时的相同曲线,随着球的质量、平均球速度和冲击频率的增加而增加,但由于更多的弹性碰撞,随着研磨介质的硬度的增加而减少。动力学和能量输入之间的基本关系为机械化学反应的规划和优化提供了基础,对于在不同的研磨平台之间转移机械化学反应是必不可少的。