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纳米结构钛催化的储氢材料 MgH2。

Nanostructured Ti-catalyzed MgH2 for hydrogen storage.

机构信息

Max-Planck-Institut für Kohlenforschung, Mülheim an der Ruhr, Germany.

出版信息

Nanotechnology. 2011 Jun 10;22(23):235401. doi: 10.1088/0957-4484/22/23/235401. Epub 2011 Apr 7.

Abstract

Nanocrystalline Ti-catalyzed MgH(2) can be prepared by a homogeneously catalyzed synthesis method. Comprehensive characterization of this sample and measurements of hydrogen storage properties are discussed and compared to a commercial MgH(2) sample. The catalyzed MgH(2) nanocrystalline sample consists of two MgH(2) phases-a tetrahedral β-MgH(2) phase and an orthorhombic high-pressure modification γ-MgH(2). Transmission electron microscopy was used for the observation of the morphology of the samples and to confirm the nanostructure. N(2) adsorption measurement shows a BET surface area of 108 m(2) g(-1) of the nanostructured material. This sample exhibits a hydrogen desorption temperature more than 130 °C lower compared to commercial MgH(2). After desorption, the catalyzed nanocrystalline sample absorbs hydrogen 40 times faster than commercial MgH(2) at 300 °C. Both the Ti catalyst and the nanocrystalline structure with correspondingly high surface area are thought to play important roles in the improvement of hydrogen storage properties. The desorption enthalpy and entropy values of the catalyzed MgH(2) nanocrystalline sample are 77.7 kJ mol(-1) H(2) and 138.3 J K(-1) mol(-1) H(2), respectively. Thermodynamic properties do not change with the nanostructure.

摘要

采用均相催化合成法制备纳米晶 Ti 催化的 MgH2。对该样品进行了综合表征,并对其储氢性能进行了测量,与商业 MgH2 样品进行了比较。催化的 MgH2 纳米晶样品由两种 MgH2 相组成——四面体β-MgH2 相和正交高压改性γ-MgH2。透射电子显微镜用于观察样品的形貌并确认其纳米结构。N2 吸附测量表明,纳米结构材料的 BET 比表面积为 108 m2 g-1。与商业 MgH2 相比,该样品的脱氢温度低 130°C 以上。在 300°C 下,催化纳米晶样品的脱氢速度比商业 MgH2 快 40 倍。Ti 催化剂和具有相应高表面积的纳米晶结构都被认为在改善储氢性能方面发挥了重要作用。催化的 MgH2 纳米晶样品的解吸焓和熵值分别为 77.7 kJ mol-1 H2 和 138.3 J K-1 mol-1 H2。热力学性质不随纳米结构而变化。

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