Steacie Institute for Molecular Sciences, National Research Council of Canada, Ottawa, ON, Canada K1A 0R6.
Proc Natl Acad Sci U S A. 2012 Sep 11;109(37):14785-90. doi: 10.1073/pnas.1205820109. Epub 2012 Aug 20.
There is interest in the role of ammonia on Saturn's moons Titan and Enceladus as the presence of water, methane, and ammonia under temperature and pressure conditions of the surface and interior make these moons rich environments for the study of phases formed by these materials. Ammonia is known to form solid hemi-, mono-, and dihydrate crystal phases under conditions consistent with the surface of Titan and Enceladus, but has also been assigned a role as water-ice antifreeze and methane hydrate inhibitor which is thought to contribute to the outgassing of methane clathrate hydrates into these moons' atmospheres. Here we show, through direct synthesis from solution and vapor deposition experiments under conditions consistent with extraterrestrial planetary atmospheres, that ammonia forms clathrate hydrates and participates synergistically in clathrate hydrate formation in the presence of methane gas at low temperatures. The binary structure II tetrahydrofuran + ammonia, structure I ammonia, and binary structure I ammonia + methane clathrate hydrate phases synthesized have been characterized by X-ray diffraction, molecular dynamics simulation, and Raman spectroscopy methods.
人们对氨在土星卫星土卫六和土卫二上的作用很感兴趣,因为在表面和内部温度和压力条件下存在水、甲烷和氨,这些卫星为研究这些物质形成的相提供了丰富的环境。氨在与土卫六和土卫二表面一致的条件下已知会形成固体半水合物、一水合物和二水合物晶体相,但也被认为在水冰抗冻剂和甲烷水合物抑制剂中发挥作用,这被认为有助于将甲烷笼形水合物释放到这些卫星的大气中。在这里,我们通过在与外星行星大气一致的条件下从溶液直接合成和蒸汽沉积实验表明,氨在存在甲烷气体的情况下形成笼形水合物,并在低温下协同参与笼形水合物的形成。通过 X 射线衍射、分子动力学模拟和拉曼光谱方法对合成的二元结构 II 四氢呋喃+氨、结构 I 氨和二元结构 I 氨+甲烷笼形水合物相进行了表征。