4.7 Article

Facile Synthesis of MoP-RuP2 with Abundant Interfaces to Boost Hydrogen Evolution Reactions in Alkaline Media

期刊

NANOMATERIALS
卷 11, 期 9, 页码 -

出版社

MDPI
DOI: 10.3390/nano11092347

关键词

electrocatalyst; hydrogen evolution reaction; interfaces

资金

  1. National Natural Science Foundation of China [22002068, 51772162, 52072197]
  2. Youth Innovation and Technology Foundation of Shandong Higher Education Institutions, China [2019KJC004]
  3. Outstanding Youth Foundation of Shandong Province, China [ZR2019JQ14]
  4. Taishan Scholar Young Talent Program [tsqn201909114]
  5. Major Scientific and Technological Innovation Project [2019JZZY020405]
  6. Major Basic Research Program of Natural Science Foundation of Shandong Province [ZR2020ZD09]
  7. China Postdoctoral Science Foundation [2021M691700]
  8. Natural Science Foundation of Shandong Province of China [ZR2019BB002, ZR2018BB031]

向作者/读者索取更多资源

This study demonstrates a novel and facile strategy for designing highly efficient and stable nanomaterials for hydrogen production by preparing MoP-RuP2@NPC electrocatalyst with porous nanostructure and abundant active sites. Compared to other materials, MoP-RuP2@NPC shows superior electrocatalytic performance for hydrogen evolution reactions. Furthermore, intermittent solar energy, wind energy, and thermal energy were successfully utilized to drive the electrolyzer for hydrogen gas generation.
Exploiting efficient electrocatalysts for hydrogen evolution reactions (HERs) is important for boosting the large-scale applications of hydrogen energy. Herein, MoP-RuP2 encapsulated in N,P-codoped carbon (MoP-RuP2@NPC) with abundant interfaces were prepared via a facile avenue with the low-toxic melamine phosphate as the phosphorous resource. Moreover, the obtained electrocatalyst possessed a porous nanostructure, had abundant exposed active sites and improved the mass transport during the electrocatalytic process. Due to the above merits, the prepared MoP-RuP2@NPC delivered a greater electrocatalytic performance for HERs (50 mV@10 mA cm(-2)) relative to RuP2@NPC (120 mV) and MoP@NPC (195 mV) in 1 M KOH. Moreover, an ultralow potential of 1.6 V was required to deliver a current density of 10 mA cm(-2) in the two-electrode configuration for overall water splitting. For practical applications, intermittent solar energy, wind energy and thermal energy were utilized to drive the electrolyzer to generate hydrogen gas. This work provides a novel and facile strategy for designing highly efficient and stable nanomaterials toward hydrogen production.

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