Department of Urban and Environmental Engineering, Ulsan National Institute of Science and Technology, Ulsan 44919, Republic of Korea.
Graduate School of Carbon Neutrality, Ulsan National Institute of Science and Technology, Ulsan 44919, Republic of Korea.
Phys Chem Chem Phys. 2022 Dec 14;24(48):29451-29460. doi: 10.1039/d2cp04563j.
Tetra--butyl ammonium chloride (TBAC) is a semi-clathrate former that can be used for clathrate-based gas capture and storage since TBAC semi-clathrate has vacant small cages available for entrapping gas molecules under mild conditions. In this study, the phase equilibria and structural information of TBAC + Xe + water systems were experimentally investigated at two different TBAC concentrations (1.0 and 3.3 mol%). The slopes of the three-phase (clathrate [H] - liquid [L] - vapor [V]) equilibrium lines for the TBAC + Xe + water systems altered at one or two points as the pressure and temperature changed, which indicates that this slope change might be caused by the structural transformation of the clathrates that were formed. The powder X-ray diffraction (PXRD) patterns, Raman spectra, and Xe nuclear magnetic resonance (NMR) spectra demonstrated that the clathrate structure of the TBAC + Xe + water systems changed from tetragonal (4/) or orthorhombic () to cubic (3̄) as the pressure increased. Surprisingly, in the higher-pressure region, TBAC acted as a thermodynamic inhibitor without being enclathrated in the clathrate lattices. The thermodynamic and structural information of the TBAC + Xe clathrates will be helpful for conceptualizing and designing the clathrate-based noble gas or radioactive gas capture and storage process.
四丁基氯化铵(TBAC)是一种半笼形形成物,可用于基于笼形物的气体捕获和储存,因为 TBAC 半笼形物在温和条件下具有可供捕获气体分子的空的小笼。在这项研究中,在两个不同的 TBAC 浓度(1.0 和 3.3 mol%)下,实验研究了 TBAC + Xe + 水系统的相平衡和结构信息。TBAC + Xe + 水系统的三相(笼形物[H] - 液相[L] - 气相[V])平衡线的斜率在压力和温度变化时在一个或两个点发生变化,这表明这种斜率变化可能是由形成的笼形物的结构转变引起的。粉末 X 射线衍射(PXRD)图谱、拉曼光谱和 Xe 核磁共振(NMR)光谱表明,随着压力的增加,TBAC + Xe + 水系统的笼形物结构从四方(4/)或正交()转变为立方(3̄)。令人惊讶的是,在高压区,TBAC 作为热力学抑制剂存在,而不被包合在笼形物晶格中。TBAC + Xe 笼形物的热力学和结构信息将有助于概念化和设计基于笼形物的稀有气体或放射性气体捕获和储存过程。