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用于原位环境池光电子能谱的氧化石墨烯窗口。

Graphene oxide windows for in situ environmental cell photoelectron spectroscopy.

机构信息

Southern Illinois University, Carbondale, Illinois 62901, USA.

出版信息

Nat Nanotechnol. 2011 Aug 28;6(10):651-7. doi: 10.1038/nnano.2011.130.

Abstract

The performance of new materials and devices often depends on processes taking place at the interface between an active solid element and the environment (such as air, water or other fluids). Understanding and controlling such interfacial processes require surface-specific spectroscopic information acquired under real-world operating conditions, which can be challenging because standard approaches such as X-ray photoelectron spectroscopy generally require high-vacuum conditions. The state-of-the-art approach to this problem relies on unique and expensive apparatus including electron analysers coupled with sophisticated differentially pumped lenses. Here, we develop a simple environmental cell with graphene oxide windows that are transparent to low-energy electrons (down to 400 eV), and demonstrate the feasibility of X-ray photoelectron spectroscopy measurements on model samples such as gold nanoparticles and aqueous salt solution placed on the back side of a window. These proof-of-principle results show the potential of using graphene oxide, graphene and other emerging ultrathin membrane windows for the fabrication of low-cost, single-use environmental cells compatible with commercial X-ray and Auger microprobes as well as scanning or transmission electron microscopes.

摘要

新材料和器件的性能通常取决于活性固体元件与环境(如空气、水或其他流体)之间界面上发生的过程。为了理解和控制这种界面过程,需要在实际工作条件下获取具有表面特异性的光谱信息,这是具有挑战性的,因为 X 射线光电子能谱等标准方法通常需要高真空条件。解决这个问题的最先进方法依赖于独特而昂贵的仪器,包括电子分析仪和复杂的差动泵透镜。在这里,我们开发了一种具有氧化石墨烯窗口的简单环境电池,该窗口对低能电子(低至 400 eV)是透明的,并证明了将金纳米粒子和水溶液等模型样品放置在窗口背面进行 X 射线光电子能谱测量的可行性。这些原理验证结果表明,使用氧化石墨烯、石墨烯和其他新兴的超薄膜窗口制造与商业 X 射线和俄歇微探针以及扫描或透射电子显微镜兼容的低成本、一次性环境电池具有潜力。

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