化学
结晶习性
结晶
习惯
表面能
合理设计
化学物理
Crystal(编程语言)
化学工程
活化能
晶体生长
扩散
动力学
动能
PEG比率
动力控制
过程(计算)
热力学
各向异性
表面改性
溶解
作者
Abraha Gebremeskel Bairu,Xin Huang,Yifu Zhang,Mingyu Chen,Ting Wang,Na Wang,Hongxun Hao
出处
期刊:Langmuir
[American Chemical Society]
日期:2026-04-22
卷期号:42 (17): 12225-12237
标识
DOI:10.1021/acs.langmuir.6c00768
摘要
Crystal habit profoundly influences the downstream processability of the final product in industrial crystallization, yet its rational control remains challenging. Herein, an integrated experimental-computational framework was employed to elucidate additive-mediated habit modification of 2-hydroxynicotinic acid (2-HNA). Controlled cooling crystallization experiments reveal a systematic transformation from highly anisotropic needle-like crystals in pure water (aspect ratio ≈ 16:1) to rod- and block-like morphologies (≈5:2) in the presence of additives, following a clear habit-modification efficiency hierarchy: PVP > PEG > CTAB ≈ SDS > INA > water. Meanwhile, mechanistic insight was obtained using a coupled attachment energy-molecular dynamics-modified attachment energy (AE-MD-MAE) framework, which demonstrates that habit evolution originates from additive-crystal surface interactions governed by two synergistic mechanisms: (i) thermodynamic stabilization, whereby additives reduce the attachment energy of reactive surfaces, particularly (011), and (10-1), and (ii) kinetic inhibition, characterized by suppressed surface diffusion and prolonged residence of additives on these surfaces. Collectively, these effects establish a unified causal chain linking intrinsic surface descriptors and additive recognition to face-specific growth inhibition, thereby enabling a transferable, mechanistically grounded workflow for crystal habit control in crystallization process development.
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