甲烷
氢
石墨
制氢
甲烷转化炉
碳纤维
材料科学
热解
可扩展性
缩放比例
工艺工程
天然气
替代天然气
环境科学
化学工程
废物管理
温室气体
氧化物
吞吐量
氧化石墨
生产(经济)
氢燃料
碳足迹
氢经济
作者
Henry Moise,Sebastian Moll,Shailesh Pathak,Joshua Martinez-Navarro,Sai A. Varanasi,Kun Xu,Eric W. McFarland,Arun Majumdar,Matteo Cargnello
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-09-03
卷期号:393 (6815): 1014-1020
标识
DOI:10.1126/science.aed4911
摘要
Methane pyrolysis (MP) offers a compelling opportunity to meet low-carbon hydrogen demand using existing energy infrastructure. A key limitation in scaling MP is the efficient delivery of high-temperature heat into the reactor. We show that hydrogen-fueled autothermal operation overcomes this limitation, enabling an increase of several orders of magnitude in the reactor throughput for commercially relevant bed diameters. It also yields a carbon coproduct of 96.0% degrees of graphitization, meeting graphite precursor specifications and enabling domestic graphite production from natural gas using low-cost iron oxide catalysts. We further demonstrate a strategy to suppress the direct emissions inherent to autothermal operation, reducing them to near zero. A process-level life cycle assessment estimates that carbon intensities for autothermal methane pyrolysis can be as low as 1.9 to 4.5 kilograms (kg) of CO 2,eq per kg H 2 .
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