High Throughput Cycling Coupled XPS of Hydrogen Storage Materials

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Title
High Throughput Cycling Coupled XPS of Hydrogen Storage Materials

CoPED ID
b030b269-1900-49df-a1e0-4033b825de3e

Status
Closed


Value
No funds listed.

Start Date
Sept. 30, 2019

End Date
Sept. 30, 2023

Description

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X-ray photoelectron spectroscopy (XPS) is one of the most powerful techniques for studying the chemistry at the surface of materials. However, it can only operate under vacuum conditions, far from the cycling pressures of hydrogen storage materials. Even ambient pressure XPS (often referred to as high-pressure XPS) cannot ever reach these sorts of pressures. Instead, we will adopt a novel method for moving a sample between the ultra-high vacuum XPS chamber and a reaction chamber where the materials can be subjected to the hydrogen pressures and temperatures required for hydrogen storage to undergo one or more cycles. The sample is then rapidly returned to the XPS chamber to perform core-level measurements to determine any chemical changes. In this way we can explore degradation mechanisms, the effects of impurities, and other irreversible reactions. Because the material never leaves the instrument, changes can be directly correlated to the cycling process.


More Information

Potential Impact:
The RI self-assessment of an individual's research projects will mean that the cohort have a high degree of understanding of the potential beneficial impact from their research on the economy, society and the environment. This then places the cohort as the best ambassadors for the CDT, hence most pathways to impact are through the students, facilitated by the CDT.

Industrial impact of this CDT is in working closely together with key industry players across the hydrogen sector, including through co-supervision, mentoring of doctoral students and industry involvement in CDT events. Our industrial stakeholders include those working on hydrogen production (ITM Power, Hydrogen Green Power, Pure Energy) and distribution (Northern Gas, Cadent), storage (Luxfer, Haydale, Far UK), safety (HSL, Shell, ITM Power), low carbon transport (Ulemco, Arcola Energy), heat and power (Bosch, Northern Gas).

Policy impact of the CDT research and other activities will occur through cohort interactions with local authorities (Nottingham City Council) and LEPs (LLEP, D2N2) through the CDT workshops and conference. A CDT in Parliament day will be facilitated by UKHFCA (who have experience in lobbying the government on behalf of their members) and enable the cohort to visit the Parliamentary Office for Science and Technology (POST), BEIS and to meet with local MPs. Through understanding the importance of evidence gathering by Government Departments and the role this has in informing policy, the cohort will be encouraged to take the initiative in submitting evidence to any relevant requests for evidence from POST.

Public impact will be achieved through developing knowledge-supported interest of public in renewable energy in particular the role of hydrogen systems and infrastructure. Special attention will be paid to demonstration of safety solutions to prove that hydrogen is not more or less dangerous compared to other fuels when it is dealt with professionally and systems are engineered properly. The public, who are ultimate beneficiaries of hydrogen technologies, will be engaged through different communication channels and the CDT activities to be aware of our work. We will communicate important conclusions of the CDT research at regional, national, and international events as appropriate.

Socio-economic impact. There are significant socio-economic opportunities, including employment, for hydrogen technologies as the UK moves to low carbon transport, heat and power supply. For the UK to have the opportunity to take an international lead in hydrogen sector we need future innovation leaders. The CDT supported by partners we will create conditions for and exploit the opportunities to maximise socio-economic impact.

Students will be expected in years 3 and 4 to undertake a research visit to an industry partner and/or to undertake a knowledge transfer secondment. It is expected these visits (supported by the CDT) will be a significant benefit to the student's research project through access to industry expertise, exploring the potential impact of their research and will also be a valuable networking experience.

David Grant SUPER_PER
James O'Shea SUPER_PER
Gavin Walker SUPER_PER

Subjects by relevance
  1. Hydrogen
  2. Spectroscopy
  3. Energy policy
  4. Renewable energy sources

Extracted key phrases
  1. High Throughput cycling
  2. Hydrogen Storage Materials
  3. High vacuum XPS chamber
  4. Ambient pressure XPS
  5. Cycling pressure
  6. Hydrogen pressure
  7. Hydrogen Green Power
  8. Ray photoelectron spectroscopy
  9. Cycling process
  10. CDT research
  11. Hydrogen storage
  12. Hydrogen technology
  13. Hydrogen system
  14. Hydrogen sector
  15. Hydrogen production

Related Pages

UKRI project entry

UK Project Locations
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