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On November 30, the China Petroleum and Chemical Industry Federation organized in Shanghai an evaluation meeting for the scientific and technological achievements related to \"Flow-based hydrogen storage using alcohol ester systems (BDO-GBL) and technologies for the separation and storage of hydrogen produced as an industrial byproduct\", work carried out by the team led by Young Researcher Zhu Yifeng from Fudan University and Academician Bao Xinhé. A panel of experts composed of academicians and industry specialists such as He Mingyuan, Xie Zaiku, and Martin carefully listened to the reports presented by the research team and the on-site assessment team responsible for laboratory pilot testing, and conducted in-depth discussions and inquiries regarding technical details, innovative breakthroughs, and application prospects. The expert group unanimously concluded that this achievement is original and represents an international leading level, achieving innovative breakthroughs in various aspects such as hydrogen storage systems, catalyst development, process innovation, and system integration: firstly, it introduces a novel alcohol ester-based hydrogen storage system. It was the first to develop a new reversible hydrogen storage system based on 1,4-butanediol (BDO) and γ-butyrolactone (GBL), and a series of high-performance copper-based metal catalysts were successfully created. These catalysts enabled efficient hydrogenation and dehydrogenation cycles at a moderate temperature range of 160–170°C, overcoming the long-standing challenges associated with liquid organic hydrogen storage technologies, namely the reliance on precious metals and high cycle temperatures. Second, it pioneered a new concept and new process for liquid-flow hydrogen storage. Through intelligent control of the system, flexible switching between hydrogen storage and release modes within a single device is achieved, converting the intermittent hydrogen production from renewable energy sources into a continuous supply of stable, high-purity hydrogen gas, thereby providing an efficient \"system buffer\" for the large-scale utilization of green electricity. Third, one-step separation and storage of hydrogen produced as an industrial byproduct have been achieved. A \"reverse-phase\" copper-based catalyst resistant to high concentrations of impurities such as CO and CO2 has been developed. This catalyst can be used to process complex industrial by-product hydrogen directly, enabling the efficient and selective storage of H2 from crude hydrogen within BDO molecules. It eliminates the need for traditional multi-step separation and purification processes, and allows for simultaneous hydrogen separation and chemical storage, thereby overturning the conventional approach of separating hydrogen first and then storing it. This offers a new platform for the utilization of by-product hydrogen resources as well as for the development of infrastructure for hydrogen storage and transportation. This achievement has completed pilot-scale testing in single-tube configurations, passed the 72-hour continuous operation test conducted by Sinopec, and achieved more than 2,000 hours of long-term stable operation. The pilot test achieved the desired objectives, yielding key data such as process operation parameters and catalyst performance. The hydrogen storage cycle of GBL-BDO has a selectivity as high as 99.9%, and when processing typical industrial by-product hydrogen, the one-way conversion rate of hydrogen reaches 94%. It is worth mentioning that this technical approach will integrate seamlessly with China’s strong foundation in the BDO chemical industry. Our country is the world’s largest producer of BDO, with sufficient production capacity and a complete industrial chain. Using BDO innovatively as a \"hydrogen carrier\" not only provides a stable and cost-effective material foundation for the large-scale adoption of this technology, but also opens up entirely new high-end application markets for the traditional BDO industry, which is facing capacity adjustments, thereby achieving a win-win situation through technological upgrading and industrial transformation. The expert panel of the evaluation committee unanimously agreed that this achievement features an original concept, advanced technology, and cutting-edge indicators; it has the potential to evolve into a hydrogen storage and transportation system with Chinese characteristics that is both advanced and practical. It holds great promise for applications in hydrogen energy storage, the recovery and utilization of hydrogen produced as a by-product in industrial processes, and the transformation of traditional chemical manufacturing processes. It will provide crucial support for China in establishing an independent and self-sufficient hydrogen energy industry ecosystem. Academician Xie Zaiku, Chief Engineer of Sinopec, pointed out that \"this achievement can not only effectively support the large-scale integration of volatile renewable energy sources and enhance the flexibility of power grids\" ; It is also capable of transforming industrial by-product hydrogen resources distributed across the country into high-value clean energy, while driving the green upgrading of traditional chemical industry chains. It provides crucial technological support and viable Chinese solutions from multiple perspectives for building an independent, controllable, safe, and efficient hydrogen energy industry system in our country. ”It is understood that the research on this achievement has received strong support from various scientific and technological programs, including the **National Natural Science Foundation of China’s Excellent Young Scientist Fund (overseas) and General Research Projects**, the key initiative under the **Key Research and Development Program on Catalytic Science**, Shanghai’s **Science and Technology Innovation Action Plan** projects, as well as funding provided by Fudan University – all of which have provided solid support for technological innovation and the transformation of research results into practical applications. To date, the team has filed 12 patent applications (with 2 granted), published 6 research papers in journals such as Nature Energy, and established a comprehensive portfolio of independent intellectual property rights, attracting widespread attention from the academic and industrial communities both at home and abroad.