论文标题

二硫化物(NBS $ _2 $) - 基于(异质)电催化剂,用于有效的氢进化反应

Niobium disulphide (NbS$_2$)-based (heterogeneous) electrocatalysts for an efficient hydrogen evolution reaction

论文作者

Najafi, Leyla, Bellani, Sebastiano, Oropesa-Nuñez, Reinier, Martín-García, Beatriz, Prato, Mirko, Mazánek, Vlastimil, Debellis, Doriana, Lauciello, Simone, Brescia, Rosaria, Sofer, Zdeněk, Bonaccorso, Francesco

论文摘要

氢进化反应(HER)的有效且具有成本效益的催化剂的设计是分子氢(H2)产生电化学水分裂的关键。过渡金属二分法(MX2),最著名的是组-6 MX2(例如MOS2和WS2),它吸引了她的替代品,可替代她最好但昂贵的PT组元素。但是,他们的活动通常仅限于他们的边缘站点而不是基础平面。此外,它们的半导体特性阻碍了有效的电子转移到催化位点,这阻碍了H2产生的高速率。本文中,我们利用液相去角质产生的金属(1H,2H和3R)NBS2纳米叶片,属于金属分层群-5 MX2的类别,以克服上述限制。利用吸湿性Li盐的化学处理和电化学自我纳米结构中的电化学处理都可以改善NBS2纳米片的活动。在我们的情况下,NBS2与其他MX2的组合也提供了异质的催化剂,从而加快了单个对应物的动力学。设计的基于NBS2的催化剂在10 mA CM-2(N10)的阴极电流中表现出势力势,分别为0.10和0.22 V,而RHE分别为0.5 m H2SO4和1 M KOH。在0.5 m H2SO4中,基于NBS2的催化剂的活性也优于PT/C基准测试的当前密度高于80 mA cm-2。我们的工作为通过电化学路线实现可行的H2生产提供了可扩展且具有成本效益的NBS2以及整个MX2投资组合的一般指南。

The design of efficient and cost-effective catalysts for the hydrogen evolution reaction (HER) is the key for molecular hydrogen (H2) production from electrochemical water splitting. Transition metal dichalcogenides (MX2), most notably group-6 MX2 (e.g., MoS2 and WS2), are appealing catalysts for the HER alternative to the best, but highly expensive, Pt-group elements. However, their HER activity is typically restricted to their edge sites rather than their basal plane. Furthermore, their semiconducting properties hinder an efficient electron transfer to the catalytic sites, which impedes a high rate of H2 production. Herein, we exploit liquid-phase exfoliation-produced metallic (1H, 2H and 3R) NbS2 nanoflakes, belonging to the class of metallic layered group-5 MX2, to overcome the abovementioned limitations. Both chemical treatment with hygroscopic Li salt and electrochemical in operando self-nanostructuring are exploited to improve the NbS2 nanoflake HER activity. The combination of NbS2 with other MX2, in our case MoSe2, also provides heterogeneous catalysts accelerating the HER kinetics of the individual counterparts. The designed NbS2-based catalysts exhibit an overpotential at a cathodic current of 10 mA cm-2 (n10) as low as 0.10 and 0.22 V vs. RHE in 0.5 M H2SO4 and 1 M KOH, respectively. In 0.5 M H2SO4, the HER activity of the NbS2-based catalysts is also superior to those of the Pt/C benchmark at current densities higher than 80 mA cm-2. Our work provides general guidelines for a scalable and cost-effective exploitation of NbS2, as well as the entire MX2 portfolio, for attaining a viable H2 production through electrochemical routes.

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