Maltby Katarzyna A, Sharma Krishna, Short Marc A S, Farooque Sannia, Hamill Rosalie, Blacker A John, Kapur Nikil, Willans Charlotte E, Nguyen Bao N
Institute of Process Research & Development, School of Chemistry, University of Leeds, Leeds LS2 9JT, U.K.
School of Mechanical Engineering, University of Leeds, Leeds LS2 9JT, U.K.
ACS Sustain Chem Eng. 2023 May 30;11(23):8675-8684. doi: 10.1021/acssuschemeng.3c02164. eCollection 2023 Jun 12.
Water-accelerated reactions, wherein at least one organic reactant is not soluble in water, are an important class of organic reactions, with a potentially pivotal impact on sustainability of chemical manufacturing processes. However, mechanistic understanding of the factors controlling the acceleration effect has been limited, due to the complex and varied physical and chemical nature of these processes. In this study, a theoretical framework has been established to calculate the rate acceleration of known water-accelerated reactions, giving computational estimations of the change to Δ which correlate with experimental data. In-depth study of a Henry reaction between -methylisatin and nitromethane using our framework led to rationalization of the reaction kinetics, its lack of dependence on mixing, kinetic isotope effect, and different salt effects with NaCl and NaSO. Based on these findings, a multiphase flow process which includes continuous phase separation and recycling of the aqueous phase was developed, and its superior green metrics (PMI-reaction = 4 and STY = 0.64 kg L h) were demonstrated. These findings form the essential basis for further in silico discovery and development of water-accelerated reactions for sustainable manufacturing.
水加速反应是一类重要的有机反应,其中至少有一种有机反应物不溶于水,对化学制造过程的可持续性可能产生关键影响。然而,由于这些过程复杂多样的物理和化学性质,对控制加速效应的因素的机理理解一直有限。在本研究中,建立了一个理论框架来计算已知水加速反应的速率加速,给出与实验数据相关的Δ变化的计算估计。使用我们的框架对α-甲基异靛蓝和硝基甲烷之间的亨利反应进行深入研究,从而使反应动力学、其对混合的不依赖性、动力学同位素效应以及NaCl和Na₂SO₄的不同盐效应合理化。基于这些发现,开发了一种包括连续相分离和水相循环的多相流过程,并展示了其优越的绿色指标(PMI-反应 = 4,STY = 0.64 kg L⁻¹ h⁻¹)。这些发现为进一步通过计算机模拟发现和开发用于可持续制造的水加速反应奠定了重要基础。