Abstract
As greenhouse gas emissions become serious, the need for sustainable and efficient hydrogen storage solutions to replace traditional fuel energy becomes increasingly urgent. This study focuses on enhancing the hydrogen storage performance of CuBTC, a metal-organic framework (MOF) via green synthesis, aligning with the green circular economy principles of reducing energy consumption and chemical solvent waste. By applying the Design of Experiments methodology, we systematically explored the impact of different synthesis conditions on CuBTC properties, offering valuable insights for mechanochemical synthesis and hydrogen storage applications. Identified optimal conditions significantly increased CuBTC hydrogen uptake to 3.2 wt% at 20 bar, comparable to solvothermal CuBTC at 3.37 wt% and 10% higher than prior studies. This optimal CuBTC also possesses a comparable hydrogen adsorption rate to solvothermal CuBTC and an accelerated adsorption rate compared to smaller CuBTC crystal samples. A notable achievement of this work is the drastic reduction of the CuBTC synthesis time to just minutes while eliminating the need for chemical solvents. This breakthrough consumes less than 2% of the energy required for traditional solvothermal synthesis and completely avoids chemical solvent waste, marking a significant environmental and efficiency improvement. In addition, the CuBTC formation mechanism was explored in this research, shedding light on the intricate process of crystal structure development. Our findings demonstrate that the ball-milling technique can significantly enhance the hydrogen storage capabilities of CuBTC while reducing energy consumption and chemical solvent waste during the synthesis process.
| Original language | English |
|---|---|
| Pages (from-to) | 371-381 |
| Number of pages | 11 |
| Journal | International Journal of Hydrogen Energy |
| Volume | 81 |
| Early online date | 24 Jul 2024 |
| DOIs | |
| Publication status | Published - 4 Sept 2024 |
Acknowledgements
Additionally, gratitude is extended for the travel funding provided by the Australian National University to support the collaboration. Special acknowledgement goes to Dr. Hong Chang in the Imaging Suite for her invaluable training and assistance with imaging facilities at University of Exeter, United Kingdom.Funding
This work was supported by the Royal Society, United Kingdom [grant numbers IEC\NSFC\211452 and RGS\R1\231093]; the Royal Society of Chemistry, United Kingdom [grants numbers E21-0260978386]; EPSRC [grants numbers EP/X035069/1 and EP/Y007778/1]; and China Scholarship Council, China - Exeter, UKPhD Programme [grants numbers 202108430012].
| Funders |
|---|
| Engineering and Physical Sciences Research Council |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
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SDG 8 Decent Work and Economic Growth
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SDG 12 Responsible Consumption and Production
Keywords
- Design of experiments methodology
- Green circular economy
- Green synthesis
- Hydrogen storage
- Metal-organic frameworks
ASJC Scopus subject areas
- Renewable Energy, Sustainability and the Environment
- Fuel Technology
- Condensed Matter Physics
- Energy Engineering and Power Technology
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