Klaser Teodoro, Popović Jasminka, Lončarić Ivor, Skoko Željko
Department of Physics, Faculty of Science, University of Zagreb, Bijenička 32, 10000 Zagreb, Croatia.
Department of Physics, University of Trento, Via Sommarive 14, 38123 Trento, Italy.
Molecules. 2025 Feb 28;30(5):1107. doi: 10.3390/molecules30051107.
This study investigates the thermosalient effect in oxitropium bromide, with a focus on the role of anisotropic thermal expansion, elastic properties, and sound propagation in driving this phenomenon. Variable-temperature X-ray powder diffraction (VTXRPD) revealed significant anisotropic thermal expansion, including negative thermal expansion (NTE) along the c-axis in the low-temperature Form A. Density functional theory (DFT) calculations were used to analyze elastic properties of oxitropium bromide and confirmed that it does not exhibit negative compressibility, emphasizing thermal anisotropy as the primary factor in the phase transition. Studies of elastic constants and sound propagation demonstrated a preferred pathway for energy transfer along the -direction, enabling rapid strain release during the phase transition. These findings confirmed that the thermosalient effect arises from cooperative molecular motion, resulting in an abrupt and energetic transformation driven by the interplay of structural anisotropy and elastic properties.
本研究调查了氧托溴铵中的热突出效应,重点关注各向异性热膨胀、弹性性质和声传播在驱动这一现象中的作用。变温X射线粉末衍射(VTXRPD)揭示了显著的各向异性热膨胀,包括低温A晶型中沿c轴的负热膨胀(NTE)。密度泛函理论(DFT)计算用于分析氧托溴铵的弹性性质,并证实其不表现出负压缩性,强调热各向异性是相变的主要因素。弹性常数和声传播的研究表明,能量沿特定方向传递存在优先路径,使得相变过程中能够快速释放应变。这些发现证实,热突出效应源于分子协同运动,是由结构各向异性和弹性性质的相互作用驱动的突然而剧烈的转变。