Ran Qin, Matsiev Daniel, Wodtke Alec M, Auerbach Daniel J
Department of Chemistry and Biochemistry, University of California, Santa Barbara, California 93106-9510, USA.
Rev Sci Instrum. 2007 Oct;78(10):104104. doi: 10.1063/1.2796149.
We describe an advanced and highly sensitive instrument for quantum state-resolved molecule-surface energy transfer studies under ultrahigh vacuum (UHV) conditions. The apparatus includes a beam source chamber, two differential pumping chambers, and a UHV chamber for surface preparation, surface characterization, and molecular beam scattering. Pulsed and collimated supersonic molecular beams are generated by expanding target molecule mixtures through a home-built pulsed nozzle, and excited quantum state-selected molecules were prepared via tunable, narrow-band laser overtone pumping. Detection systems have been designed to measure specific vibrational-rotational state, time-of-flight, angular and velocity distributions of molecular beams coming to and scattered off the surface. Facilities are provided to clean and characterize the surface under UHV conditions. Initial experiments on the scattering of HCl(v = 0) from Au(111) show many advantages of this new instrument for fundamental studies of the energy transfer at the gas-surface interface.
我们描述了一种先进且高度灵敏的仪器,用于在超高真空(UHV)条件下进行量子态分辨的分子 - 表面能量转移研究。该装置包括一个束源室、两个差动抽气室以及一个用于表面制备、表面表征和分子束散射的超高真空室。通过自制的脉冲喷嘴使目标分子混合物膨胀来产生脉冲且准直的超声分子束,并通过可调谐的窄带激光泛频泵浦制备激发的量子态选择分子。已设计出检测系统来测量到达表面和从表面散射的分子束的特定振转态、飞行时间、角度和速度分布。还提供了在超高真空条件下清洁和表征表面的设施。关于HCl(v = 0)从Au(111)表面散射的初步实验展示了这种新仪器在气 - 表面界面能量转移基础研究方面的诸多优势。