TY - JOUR
T1 - Robustly interpretable melting-point prediction for structurally diverse nitro-containing compounds
AU - Feng, Xiao yu
AU - Chen, Fang
AU - Song, Si wei
AU - Wang, Rui hui
AU - Wang, Yi
AU - Zhang, Qing hua
N1 - Publisher Copyright:
© 2026 The Authors.
PY - 2026/6
Y1 - 2026/6
N2 - Accurate melting point prediction for nitro-containing flexible organic molecules is critical for optimizing their performance in pharmaceuticals, energetic materials, and chemical processing. Using nine representative nitro compounds tailored to explore intermolecular interactions and the effect of vibrational entropy effects on the melting point of nitro-containing flexible compounds, we developed a dual descriptor framework that integrates enthalpy descriptors (from crystal structure) and entropy descriptors (from ab initial molecular dynamics, AIMD). Through comparison between the linear multivariate regression (MLR) model and the nonlinear KNN model, combined with SHAP analysis, the KNN model, which integrates intermolecular interactions ( BEC_max1-3 , BEC_total ), molecular van der Waals volume ( V W), and molecular vibrational features ( RMSD_ave , E_b , and ΔE )—demonstrated high accuracy (training set: R2 = 0.83, MAE = 12.48 °C; test set: R2 = 0.79, MAE = 15.29 °C) and interpretability. Mechanistic analysis indicates that the melting process is dominated by the collaborative effect of enthalpy and entropy. This framework establishes a structure-property linkage for rational design of new nitro-containing flexible organic compounds.
AB - Accurate melting point prediction for nitro-containing flexible organic molecules is critical for optimizing their performance in pharmaceuticals, energetic materials, and chemical processing. Using nine representative nitro compounds tailored to explore intermolecular interactions and the effect of vibrational entropy effects on the melting point of nitro-containing flexible compounds, we developed a dual descriptor framework that integrates enthalpy descriptors (from crystal structure) and entropy descriptors (from ab initial molecular dynamics, AIMD). Through comparison between the linear multivariate regression (MLR) model and the nonlinear KNN model, combined with SHAP analysis, the KNN model, which integrates intermolecular interactions ( BEC_max1-3 , BEC_total ), molecular van der Waals volume ( V W), and molecular vibrational features ( RMSD_ave , E_b , and ΔE )—demonstrated high accuracy (training set: R2 = 0.83, MAE = 12.48 °C; test set: R2 = 0.79, MAE = 15.29 °C) and interpretability. Mechanistic analysis indicates that the melting process is dominated by the collaborative effect of enthalpy and entropy. This framework establishes a structure-property linkage for rational design of new nitro-containing flexible organic compounds.
KW - Ab initio molecular dynamics
KW - Design and synthesis
KW - Melting point
KW - Nitro-containing flexible compounds
KW - Structure-property relationship
UR - https://www.scopus.com/pages/publications/105029575520
U2 - 10.1016/j.enmf.2026.01.019
DO - 10.1016/j.enmf.2026.01.019
M3 - 文章
AN - SCOPUS:105029575520
SN - 2666-6472
VL - 7
SP - 135
EP - 143
JO - Energetic Materials Frontiers
JF - Energetic Materials Frontiers
IS - 2
ER -