Wang Xiaoyan, Fei Yang, Chen Jie, Pan Yixiang, Yuan Weiyong, Zhang Lian Ying, Guo Chun Xian, Li Chang Ming
Institute for Clean Energy and Advanced Materials, School of Materials & Energy, Southwest University, Chongqing, 400715, China.
The State Key Lab of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu, 610065, China.
Small. 2022 Jan;18(2):e2103866. doi: 10.1002/smll.202103866. Epub 2021 Dec 5.
3D ZIF-67-particles-impregnated cellulose-nanofiber nanosheets with oriented macropores are synthesized via directional-freezing-assisted in situ self-assembly, and converted to 3D CoP-nanoparticle (NP)-embedded hierarchical, but macropores-oriented, N-doped carbon nanosheets via calcination and phosphidation. The obtained nanoarchitecture delivers overpotentials at 10 and 50 mA cm and Tafel slope of 82.1 and 113.4 mV and 40.8 mV dec in 0.5 M H SO , and of 97.1 and 136.6 mV and 51.2 mV dec in 1 M KOH, all of which are superior to those of the most reported non-noble-metal-based hydrogen evolution reaction (HER) catalysts. This catalyst even surpasses commercial Pt/C for a much lower overpotential at high current densities, which is essential for large-scale hydrogen production. Its catalytic activity can be further optimized to become one of the best in both 0.5 M H SO and 1 M KOH. The outstanding catalytic activity is ascribed to the uniformly-dispersed small CoP NPs in the 3D carbon sheets and the hierarchical nanostructure with rich oriented pores. This work develops a facile, economical, and universal self-assembly strategy to fabricate uniquely nanostructured hybrids to simultaneously promote charge transfer and mass transport, and also offers an inexpensive and high-performance HER catalyst toward industry-scale water splitting.
通过定向冷冻辅助原位自组装合成了具有定向大孔的3D ZIF-67颗粒浸渍纤维素纳米纤维纳米片,并通过煅烧和磷化将其转化为3D CoP纳米颗粒(NP)嵌入的分级但大孔定向的N掺杂碳纳米片。所获得的纳米结构在0.5 M H₂SO₄中,在10和50 mA cm⁻²下的过电位以及Tafel斜率分别为82.1、113.4和40.8 mV dec⁻¹,在1 M KOH中分别为97.1、136.6和51.2 mV dec⁻¹,所有这些均优于大多数报道的非贵金属基析氢反应(HER)催化剂。该催化剂在高电流密度下具有更低的过电位,甚至超过了商业Pt/C,这对于大规模制氢至关重要。其催化活性可以进一步优化,使其在0.5 M H₂SO₄和1 M KOH中均成为最佳催化剂之一。优异的催化活性归因于3D碳片中均匀分散的小CoP NPs以及具有丰富定向孔的分级纳米结构。这项工作开发了一种简便、经济且通用的自组装策略,以制备独特的纳米结构杂化物,同时促进电荷转移和质量传输,还提供了一种用于工业规模水分解的廉价且高性能的HER催化剂。