光热治疗
材料科学
催化作用
氨
纳米颗粒
水溶液
氢
硅
光化学
纳米线
分解
热分解
钌
制氢
分解水
化学工程
纳米技术
光催化
光电子学
化学
物理化学
有机化学
工程类
作者
Jinglin Li,Bowen Sheng,Yiqing Chen,Yanzhao Yang,Ping Wang,Yixin Li,Tianqi Yu,Pan Hu,Liang Qiu,Min Zhong,Jun Song,Lei Zhu,Xinqiang Wang,Zhen Huang,Baowen Zhou
标识
DOI:10.1038/s41467-024-51810-y
摘要
Photo-thermal-coupling ammonia decomposition presents a promising strategy for utilizing the full-spectrum to address the H2 storage and transportation issues. Herein, we exhibit a photo-thermal-catalytic architecture by assembling gallium nitride nanowires-supported ruthenium nanoparticles on a silicon for extracting hydrogen from ammonia aqueous solution in a batch reactor with only sunlight input. The photoexcited charge carriers make a predomination contribution on H2 activity with the assistance of the photothermal effect. Upon concentrated light illumination, the architecture significantly reduces the activation energy barrier from 1.08 to 0.22 eV. As a result, a high turnover number of 3,400,750 is reported during 400 h of continuous light illumination, and the H2 activity per hour is nearly 1000 times higher than that under the pure thermo-catalytic conditions. The reaction mechanism is extensively studied by coordinating experiments, spectroscopic characterizations, and density functional theory calculation. Outdoor tests validate the viability of such a multifunctional architecture for ammonia decomposition toward H2 under natural sunlight. The author report a Ru NPs/GaN NWs nanoarchitecture on Si for utilizing full spectrum to drive efficient and robust photothermal H2 production from NH3 with a high turnover number of >3,400,750 over 400 h.
科研通智能强力驱动
Strongly Powered by AbleSci AI