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使用单原子位点铂/二氧化铈催化剂从甲醇中高效制氢

Efficient Hydrogen Production from Methanol Using a Single-Site Pt/CeO Catalyst.

作者信息

Chen Lu-Ning, Hou Kai-Peng, Liu Yi-Sheng, Qi Zhi-Yuan, Zheng Qi, Lu Yi-Hsien, Chen Jia-Yu, Chen Jeng-Lung, Pao Chih-Wen, Wang Shuo-Bo, Li Yao-Bin, Xie Shao-Hua, Liu Fu-Dong, Prendergast David, Klebanoff Leonard E, Stavila Vitalie, Allendorf Mark D, Guo Jinghua, Zheng Lan-Sun, Su Ji, Somorjai Gabor A

机构信息

State Key Laboratory of Physical Chemistry of Solid Surfaces, Collaborative Innovation Center of Chemistry for Energy Materials, and Department of Chemistry, College of Chemistry and Chemical Engineering , Xiamen University , Xiamen 361005 , China.

Department of Chemistry , University of California-Berkeley , Berkeley , California 94720 , United States.

出版信息

J Am Chem Soc. 2019 Nov 13;141(45):17995-17999. doi: 10.1021/jacs.9b09431. Epub 2019 Oct 29.

Abstract

Hydrogen is regarded as an attractive alternative energy carrier due to its high gravimetric energy density and only water production upon combustion. However, due to its low volumetric energy density, there are still some challenges in practical hydrogen storage and transportation. In the past decade, using chemical bonds of liquid organic molecules as hydrogen carriers to generate hydrogen in situ provided a feasible method to potentially solve this problem. Research efforts on liquid organic hydrogen carriers (LOHCs) seek practical carrier systems and advanced catalytic materials that have the potential to reduce costs, increase reaction rate, and provide a more efficient catalytic hydrogen generation/storage process. In this work, we used methanol as a hydrogen carrier to release hydrogen in situ with the single-site Pt/CeO catalyst. Moreover, in this reaction, compared with traditional nanoparticle catalysts, the single site catalyst displays excellent hydrogen generation efficiency, 40 times higher than 2.5 nm Pt/CeO sample, and 800 times higher compared to 7.0 nm Pt/CeO sample. This in-depth study highlights the benefits of single-site catalysts and paves the way for further rational design of highly efficient catalysts for sustainable energy storage applications.

摘要

由于氢的重量能量密度高且燃烧时仅产生水,它被视为一种有吸引力的替代能源载体。然而,由于其体积能量密度低,在实际的氢储存和运输方面仍存在一些挑战。在过去十年中,利用液态有机分子的化学键作为氢载体原位产氢提供了一种潜在解决该问题的可行方法。对液态有机氢载体(LOHCs)的研究致力于寻找具有降低成本、提高反应速率以及提供更高效催化产氢/储氢过程潜力的实用载体系统和先进催化材料。在这项工作中,我们使用甲醇作为氢载体,通过单中心Pt/CeO催化剂原位释放氢气。此外,在该反应中,与传统的纳米颗粒催化剂相比,单中心催化剂显示出优异的产氢效率,比2.5 nm的Pt/CeO样品高40倍,比7.0 nm的Pt/CeO样品高800倍。这项深入研究突出了单中心催化剂的优势,并为可持续储能应用中高效催化剂的进一步合理设计铺平了道路。

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