Kappe Miriam, Schiller Arne, Krasnokutski Serge A, Ončák Milan, Scheier Paul, Cunningham Ethan M
Institut für Ionenphysik und Angewandte Physik, Universität Innsbruck, Technikerstraße 25, 6020, Innsbruck, Austria.
Laboratory Astrophysics Group of the MPI for Astronomy at the University of Jena, Helmholtzweg 3, D-07743, Jena, Germany.
Phys Chem Chem Phys. 2022 Oct 5;24(38):23142-23151. doi: 10.1039/d2cp03523e.
We report the first helium-tagged electronic spectra of cationic adamantane clusters, along with its singly, doubly, and triply dehydrogenated analogues embedded in helium droplets. Absorption spectra were measured by recording the evaporation of helium atoms as a function of laser wavelength in the range of 300-2150 nm. Experimental spectra are coupled with simulated spectra obtained from quantum chemical calculations. The spectrum of cationic adamantane agrees with the electronic photodissociation spectrum measured previously, with an additional low-energy absorption at around 1000 nm. The spectra of the dehydrogenated molecules present broad absorptions exclusively in the high-energy region (300-600 nm). For the higher order adamantane dimer and trimer ions, strong absorptions are observed in the low-energy region (900-2150 nm), rationalised by transitions delocalised over two adamantane units.
我们报告了阳离子金刚烷团簇及其嵌入氦滴中的单脱氢、双脱氢和三脱氢类似物的首个氦标记电子光谱。通过记录氦原子的蒸发作为激光波长在300 - 2150 nm范围内的函数来测量吸收光谱。实验光谱与从量子化学计算获得的模拟光谱相结合。阳离子金刚烷的光谱与先前测量的电子光解离光谱一致,在1000 nm左右有一个额外的低能量吸收。脱氢分子的光谱仅在高能区域(300 - 600 nm)呈现出宽吸收。对于高阶金刚烷二聚体和三聚体离子,在低能量区域(900 - 2150 nm)观察到强吸收,这可通过在两个金刚烷单元上离域的跃迁来解释。