Creemer J F, Helveg S, Hoveling G H, Ullmann S, Molenbroek A M, Sarro P M, Zandbergen H W
DIMES-ECTM, Delft University of Technology, P.O. Box 5053, 2600 GB Delft, The Netherlands.
Ultramicroscopy. 2008 Aug;108(9):993-8. doi: 10.1016/j.ultramic.2008.04.014. Epub 2008 May 2.
We demonstrate a novel nanoreactor for performing atomic-resolution environmental transmission electron microscopy (ETEM) of nanostructured materials during exposure to gases at ambient pressures and elevated temperatures. The nanoreactor is a microelectromechanical system (MEMS) and is functionalized with a micrometer-sized gas-flow channel, electron-transparent windows and a heating device. It fits into the tip of a dedicated sample holder that can be used in a normal CM microscope of Philips/FEI Company. The nanoreactor performance was demonstrated by ETEM imaging of a Cu/ZnO catalyst for methanol synthesis during exposure to hydrogen. Specifically, the nanoreactor facilitated the direct observation of Cu nanocrystal growth and mobility on a sub-second time scale during heating to 500 degrees C and exposure to 1.2 bar of H(2). For the same gas reaction environment, ETEM images show atomic lattice fringes in the Cu nanocrystals with spacing of 0.18 nm, attesting the spatial resolution limit of the system. The nanoreactor concept opens up new possibilities for in situ studies of nanomaterials and the ways they interact with their ambient working environment in diverse areas, such as heterogeneous catalysis, electrochemistry, nanofabrication, materials science and biology.
我们展示了一种新型纳米反应器,用于在环境压力和高温下暴露于气体时对纳米结构材料进行原子分辨率环境透射电子显微镜(ETEM)研究。该纳米反应器是一种微机电系统(MEMS),具有微米级气流通道、电子透明窗口和加热装置。它安装在专用样品架的尖端,可用于飞利浦/飞兆半导体公司的普通CM显微镜。通过对甲醇合成用铜/氧化锌催化剂在氢气暴露下进行ETEM成像,证明了纳米反应器的性能。具体而言,该纳米反应器有助于在加热至500摄氏度并暴露于1.2巴氢气的情况下,在亚秒时间尺度上直接观察铜纳米晶体的生长和迁移。在相同的气体反应环境下,ETEM图像显示铜纳米晶体中的原子晶格条纹间距为0.18纳米,证明了该系统的空间分辨率极限。纳米反应器概念为纳米材料的原位研究以及它们在多领域(如多相催化、电化学、纳米制造、材料科学和生物学)中与其周围工作环境相互作用的方式开辟了新的可能性。