Azad Tanzina, Torres Hazl F, Auad Maria L, Elder Thomas, Adamczyk Andrew J
Department of Chemical Engineering, Auburn University, Auburn, AL, USA.
Center for Polymer and Advanced Composites, Auburn, AL, USA.
Phys Chem Chem Phys. 2021 Sep 29;23(37):20919-20935. doi: 10.1039/d1cp02917g.
Computational studies on the pyrolysis of lignin using electronic structure methods have been largely limited to dimeric or trimeric models. In the current work we have modeled a lignin oligomer consisting of 10 syringyl units linked through 9 β-O-4' bonds. A lignin model of this size is potentially more representative of the polymer in angiosperms; therefore, we used this representative model to examine the behavior of hardwood lignin during the initial steps of pyrolysis. Using this oligomer, the present work aims to determine if and how the reaction enthalpies of bond cleavage vary with positions within the chain. To accomplish this, we utilized a composite method using molecular mechanics based conformational sampling and quantum mechanically based density functional theory (DFT) calculations. Our key results show marked differences in bond dissociation enthalpies (BDE) with the position. In addition, we calculated standard thermodynamic properties, including enthalpy of formation, heat capacity, entropy, and Gibbs free energy for a wide range of temperatures from 25 K to 1000 K. The prediction of these thermodynamic properties and the reaction enthalpies will benefit further computational studies and cross-validation with pyrolysis experiments. Overall, the results demonstrate the utility of a better understanding of lignin pyrolysis for its effective valorization.
使用电子结构方法对木质素热解进行的计算研究在很大程度上局限于二聚体或三聚体模型。在当前工作中,我们构建了一个由10个紫丁香基单元通过9个β-O-4'键连接而成的木质素低聚物模型。这种大小的木质素模型可能更能代表被子植物中的聚合物;因此,我们使用这个具有代表性的模型来研究阔叶木木质素在热解初始阶段的行为。利用这个低聚物,本工作旨在确定键断裂的反应焓是否以及如何随链内位置而变化。为实现这一目标,我们采用了一种复合方法,该方法结合了基于分子力学的构象采样和基于量子力学的密度泛函理论(DFT)计算。我们的关键结果表明,键解离焓(BDE)随位置存在显著差异。此外,我们计算了25 K至1000 K范围内广泛温度下的标准热力学性质,包括生成焓、热容、熵和吉布斯自由能。这些热力学性质和反应焓的预测将有助于进一步的计算研究以及与热解实验的交叉验证。总体而言,结果表明更好地理解木质素热解对于其有效增值具有重要意义。