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High field electron paramagnetic resonance spectroscopy under ultrahigh vacuum conditions - A multipurpose machine to study paramagnetic species on well defined single crystal surfaces

机译:超高真空条件下的高场电子顺磁共振光谱 - 一种多功能机器,用于研究明确定义的单晶表面上的顺磁物种

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摘要

A new ultrahigh vacuum (UHV) electron paramagnetic resonance (EPR) spectrometer operating at 94 GHz to investigate paramagnetic centers on single crystal surfaces is described. It is particularly designed to study paramagnetic centers on well-defined model catalysts using epitaxial thin oxide films grown on metal single crystals. The EPR setup is based on a commercial Bruker E600 spectrometer, which is adapted to ultrahigh vacuum conditions using a home made Fabry Perot resonator. The key idea of the resonator is to use the planar metal single crystal required to grow the single crystalline oxide films as one of the mirrors of the resonator. EPR spectroscopy is solely sensitive to paramagnetic species, which are typically minority species in such a system. Hence, additional experimental characterization tools are required to allow for a comprehensive investigation of the surface. The apparatus includes a preparation chamber hosting equipment, which is required to prepare supported model catalysts. In addition, surface characterization tools such as low energy electron diffraction (LEED)/Auger spectroscopy, temperature programmed desorption (TPD), and infrared reflection absorption spectroscopy (IRAS) are available to characterize the surfaces. A second chamber used to perform EPR spectroscopy at 94 GHz has a room temperature scanning tunneling microscope attached to it, which allows for real space structural characterization. The heart of the UHV adaptation of the EPR experiment is the sealing of the Fabry-Perot resonator against atmosphere. To this end it is possible to use a thin sapphire window glued to the backside of the coupling orifice of the Fabry Perot resonator. With the help of a variety of stabilization measures reducing vibrations as well as thermal drift it is possible to accumulate data for a time span, which is for low temperature measurements only limited by the amount of liquid helium. Test measurements show that the system can detect paramagnetic species with a density of approximately 5 × 10 spins/cm, which is comparable to the limit obtained for the presently available UHV-EPR spectrometer operating at 10 GHz (X-band). Investigation of electron trapped centers in MgO(001) films shows that the increased resolution offered by the experiments at W-band allows to identify new paramagnetic species, that cannot be differentiated with the currently available methodology.
机译:描述了一种新的超高真空(UHV)电子顺磁共振(EPR)光谱仪,其工作频率为94 GHz,用于研究单晶表面上的顺磁中心。它是专门设计用来研究明确定义的模型催化剂上的顺磁中心的,该催化剂使用在金属单晶上生长的外延薄氧化膜。 EPR设置基于商用Bruker E600光谱仪,该光谱仪使用自制的Fabry Perot谐振器适应超高真空条件。谐振器的关键思想是使用生长单晶氧化膜所需的平面金属单晶作为谐振器的反射镜之一。 EPR光谱仅对顺磁性物质敏感,顺磁性物质通常是此类系统中的少数物质。因此,需要额外的实验表征工具以对表面进行全面研究。该设备包括制备室容纳设备,其用于制备负载的模型催化剂。此外,还可以使用表面表征工具(例如低能电子衍射(LEED)/俄歇光谱仪,程序升温解吸(TPD)和红外反射吸收光谱仪(IRAS))来表征表面。用于在94 GHz进行EPR光谱的第二个腔室连接有室温扫描隧道显微镜,可以进行真实的空间结构表征。 EPR实验的特高压改型的核心是法布里-珀罗共振器对大气的密封。为此,可以使用粘在法布里珀罗谐振器耦合孔背面的薄蓝宝石窗口。借助各种稳定措施,可减少振动和热漂移,从而可以在一段时间内累积数据,这对于低温测量而言仅受液氦量的限制。测试测量表明,该系统可以检测到大约5×10旋转/厘米的顺磁性物质,这与目前在10 GHz(X波段)下运行的UHV-EPR光谱仪所获得的极限相当。对MgO(001)薄膜中电子陷阱中心的研究表明,在W波段进行的实验所提供的提高的分辨率允许识别新的顺磁性物质,而这些物质无法用当前可用的方法加以区分。

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