Machine learning-driven prediction of deep eutectic solvents’ heat capacity for sustainable process design

共晶体系 过程(计算) 热容 深共晶溶剂 工艺工程 材料科学 化学工程 制造工程 计算机科学 工程类 冶金 热力学 物理 微观结构 操作系统
作者
Amit Kumar Halder,Reza Haghbakhsh,Elisabete S.C. Ferreira,Ana Rita C. Duarte,M. Natália D. S. Cordeiro
出处
期刊:Journal of Molecular Liquids [Elsevier BV]
卷期号:418: 126707-126707 被引量:10
标识
DOI:10.1016/j.molliq.2024.126707
摘要

• MLP model proposed to estimate heat capacity of deep eutectic solvents (DESs) • COSMO-RS descriptors used to capture detailed information about DES structures. • SHAP analysis identifies key chemical features influencing DES heat capacity. • The model shows improved accuracy and promise for diverse DES compositions. • Offers a reliable tool for designing DESs with tailored functionalities. Heat capacity, a crucial physical property for chemical processes, is often understudied in Deep Eutectic Solvents (DESs), which in turn are promising green alternatives to environmentally hazardous conventional solvents. This work addresses this gap by developing a machine learning model to predict DES heat capacity and identify key structural features influencing it. We employed a dataset of 530 DESs with corresponding experimental heat capacity values. Quantum-chemical COSMO-RS-based descriptors, capturing detailed information about DES structures, were calculated for each data point. Various machine learning algorithms, namely k -Nearest Neighbours ( k NN), Random Forests (RF), Neural Network Multilayer Perceptron (MLP), and Support Vector Machines (SVM) were explored alongside a linear model (Multiple Linear Regression, MLR). Hyperparameter optimisation ensured all models were fine-tuned for optimal performance. The most successful model, based on the MLP technique, achieved remarkably low Average Absolute Relative Deviation (AARD) values of 0.500 % and 3.999 % for the training and test sets, respectively. This signifies a significant improvement in prediction accuracy compared to traditional methods. Furthermore, by applying a SHapley Additive exPlanations (SHAP) analysis, we identified the most crucial structural factors within DES components that govern their heat capacity. This comprehensive investigation offers valuable insights that can pave the way for an efficient design of novel DESs in the future.

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