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Evolving hydrogen-storage technology: guidelines developed for the design of anti-evaporation catalysts

03.05.24 | National Institute for Materials Science, Japan

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1. A research team consisting of NIMS and the Tokyo Institute of Technology has identified materials capable of catalyzing the conversion of ortho-hydrogen to para-hydrogen. These catalysts should be essential to the spread of mass-transportation/storage of liquid hydrogen.

2. Hydrogen is becoming widely accepted as an alternative energy source to fossil fuels. Its liquefaction (at temperatures below -253°C under pressures higher than one atmosphere) can dramatically reduce its volume, making it suitable for transportation and storage. Hydrogen molecules (H 2 )—each composed of two hydrogen atoms—exist in two isomeric forms: ortho- and para-H 2 . Under normal conditions, ortho- and para-H 2 are present in a 3:1 ratio, with ortho-H 2 slightly more energetically unstable than para-H 2 . Gradually cooling H 2 to its liquefaction temperature causes all ortho-H 2 to convert to para-H 2 , producing stable liquid H 2 .

3. Rapid cooling of H 2 under high pressure—needed for liquefaction—delays the ortho-to-para conversion during the cooling process, leaving considerable amounts of ortho-H 2 in the liquid H 2 produced. The residual ortho-H 2 molecules continue to isomerize to para-H 2 during the storage, triggering partial vaporization of the liquid H 2 and resulting in significant loss of H 2 and energy. The choice of proper catalysts prior to the liquefaction process can solve this problem because of accelerated ortho-to-para conversion. However, existing catalysts were incapable of adequately accelerating conversion and it was therefore desirable to develop more effective ones.

4. This research team evaluated the ability of more than 170 solid materials—including metals and ionic crystals—to catalyze ortho-to-para conversion. As a result, the team found that manganese oxide (Mn 3 O 4 ) and cobalt oxide (CoO) exhibited significantly higher catalytic performance than conventional iron oxide-based catalysts. In addition, the team identified major factors influencing the catalytic activities of these materials in accelerating ortho-to-para conversion.

5. Hydrogen liquefaction is crucial for long-distance hydrogen transportation by sea from major hydrogen producers/exporters (in particular, Australia and the Middle East) to hydrogen importers, such as Japan. The catalyst design guidelines and high-performance catalysts developed in this research project are expected to greatly help Japan move forward with its plan to put the hydrogen economy concept into practice.

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6. This project was carried out by a research team consisting of Hideki Abe (Leader, Hydrogen Production Catalyst Materials Group, Research Center for Energy and Environmental Materials, NIMS), Hiroshi Mizoguchi (Special Researcher, Electroactive Materials Team, Research Center for Materials Nanoarchitectonics, NIMS) and Hideo Hosono (Honorary Professor, Tokyo Institute of Technology). This work was supported by the JST-Mirai Program (grant number: JPMJMI18A3).

7. This research was published in Wiley Exploration on December 15, 2023 ( https://doi.org/10.1002/EXP.20230040 ).

Exploration

10.1002/EXP.20230040

Experimental study

Not applicable

Exploration of heterogeneous catalyst for molecular hydrogen ortho-para conversion

14-Dec-2023

Keywords

Article Information

Contact Information

Yasufumi Nakamichi
National Institute for Materials Science, Japan
NAKAMICHI.Yasufumi@nims.go.jp

Source

How to Cite This Article

APA:
National Institute for Materials Science, Japan. (2024, March 5). Evolving hydrogen-storage technology: guidelines developed for the design of anti-evaporation catalysts. Brightsurf News. https://www.brightsurf.com/news/LDEPW9N8/evolving-hydrogen-storage-technology-guidelines-developed-for-the-design-of-anti-evaporation-catalysts.html
MLA:
"Evolving hydrogen-storage technology: guidelines developed for the design of anti-evaporation catalysts." Brightsurf News, Mar. 5 2024, https://www.brightsurf.com/news/LDEPW9N8/evolving-hydrogen-storage-technology-guidelines-developed-for-the-design-of-anti-evaporation-catalysts.html.