Donaldson Callum, Herdes Carmelo
Department of Chemical Engineering, University of Bath, Bath Ba2 7ay, United Kingdom.
J Phys Chem B. 2025 Feb 13;129(6):1811-1817. doi: 10.1021/acs.jpcb.4c08254. Epub 2025 Jan 31.
Since its inception in 2014, Cyrene has emerged as a promising biobased solvent derived from renewable cellulose waste, offering a sustainable alternative to conventional toxic solvents. However, experimental data on its thermodynamic and transport properties remain scarce. This study addresses this critical gap by employing state-of-the-art molecular dynamics simulations. The results provide novel data on Cyrene's phase behavior and fluid dynamics over a wide temperature range (300-700 K) and pressure conditions, including the prediction of critical properties (801 K, 81.04 bar, and 415.389 kg/m). By leveraging advanced computational techniques, this research elucidates Cyrene's density, diffusion coefficients, and viscosity, with accuracy validated against experimental data where available. These findings enhance our theoretical understanding of Cyrene, supporting its adoption in industrial applications and contributing to the broader agenda of green chemistry. Future work will extend these models to study solvent mixtures and coarse-grained representations, driving further innovation in sustainable solvent design.
自2014年问世以来,环戊酮已成为一种颇具前景的生物基溶剂,它源自可再生的纤维素废料,为传统有毒溶剂提供了一种可持续的替代方案。然而,关于其热力学和传输性质的实验数据仍然匮乏。本研究通过采用最先进的分子动力学模拟来填补这一关键空白。研究结果提供了关于环戊酮在广泛温度范围(300 - 700 K)和压力条件下的相行为和流体动力学的新数据,包括临界性质(801 K、81.04 bar和415.389 kg/m)的预测。通过利用先进的计算技术,本研究阐明了环戊酮的密度、扩散系数和粘度,并在有可用实验数据的情况下对准确性进行了验证。这些发现增强了我们对环戊酮的理论理解,支持其在工业应用中的采用,并为绿色化学的更广泛议程做出贡献。未来的工作将扩展这些模型以研究溶剂混合物和粗粒度表示,推动可持续溶剂设计的进一步创新。