Literature DB >> 28329760

Low-temperature hydrogen production from water and methanol using Pt/α-MoC catalysts.

Lili Lin1, Wu Zhou2,3, Rui Gao4,5, Siyu Yao1, Xiao Zhang6, Wenqian Xu7, Shijian Zheng8, Zheng Jiang9, Qiaolin Yu1, Yong-Wang Li4,5, Chuan Shi6, Xiao-Dong Wen4,5, Ding Ma1.   

Abstract

Polymer electrolyte membrane fuel cells (PEMFCs) running on hydrogen are attractive alternative power supplies for a range of applications, with in situ release of the required hydrogen from a stable liquid offering one way of ensuring its safe storage and transportation before use. The use of methanol is particularly interesting in this regard, because it is inexpensive and can reform itself with water to release hydrogen with a high gravimetric density of 18.8 per cent by weight. But traditional reforming of methanol steam operates at relatively high temperatures (200-350 degrees Celsius), so the focus for vehicle and portable PEMFC applications has been on aqueous-phase reforming of methanol (APRM). This method requires less energy, and the simpler and more compact device design allows direct integration into PEMFC stacks. There remains, however, the need for an efficient APRM catalyst. Here we report that platinum (Pt) atomically dispersed on α-molybdenum carbide (α-MoC) enables low-temperature (150-190 degrees Celsius), base-free hydrogen production through APRM, with an average turnover frequency reaching 18,046 moles of hydrogen per mole of platinum per hour. We attribute this exceptional hydrogen production-which far exceeds that of previously reported low-temperature APRM catalysts-to the outstanding ability of α-MoC to induce water dissociation, and to the fact that platinum and α-MoC act in synergy to activate methanol and then to reform it.

Entities:  

Year:  2017        PMID: 28329760     DOI: 10.1038/nature21672

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  20 in total

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  54 in total

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6.  A general method for rapid synthesis of refractory carbides by low-pressure carbothermal shock reduction.

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10.  Dynamic traction of lattice-confined platinum atoms into mesoporous carbon matrix for hydrogen evolution reaction.

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Journal:  Sci Adv       Date:  2018-01-19       Impact factor: 14.136

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