| Literature DB >> 25173272 |
C T Herbschleb1, P C van der Tuijn1, S B Roobol1, V Navarro1, J W Bakker1, Q Liu1, D Stoltz1, M E Cañas-Ventura1, G Verdoes1, M A van Spronsen1, M Bergman1, L Crama1, I Taminiau1, A Ofitserov2, G J C van Baarle2, J W M Frenken1.
Abstract
To enable atomic-scale observations of model catalysts under conditions approaching those used by the chemical industry, we have developed a second generation, high-pressure, high-temperature scanning tunneling microscope (STM): the ReactorSTM. It consists of a compact STM scanner, of which the tip extends into a 0.5 ml reactor flow-cell, that is housed in a ultra-high vacuum (UHV) system. The STM can be operated from UHV to 6 bars and from room temperature up to 600 K. A gas mixing and analysis system optimized for fast response times allows us to directly correlate the surface structure observed by STM with reactivity measurements from a mass spectrometer. The in situ STM experiments can be combined with ex situ UHV sample preparation and analysis techniques, including ion bombardment, thin film deposition, low-energy electron diffraction and x-ray photoelectron spectroscopy. The performance of the instrument is demonstrated by atomically resolved images of Au(111) and atom-row resolution on Pt(110), both under high-pressure and high-temperature conditions.Year: 2014 PMID: 25173272 DOI: 10.1063/1.4891811
Source DB: PubMed Journal: Rev Sci Instrum ISSN: 0034-6748 Impact factor: 1.523