School of Chemistry, Beijing Advanced Innovation Center for Biomedical Engineering, Beihang University, Beijing, 100191, China.
College of Chemistry and Molecular Engineering, Peking University, Beijing, 100871, China.
Adv Mater. 2018 Nov;30(46):e1803590. doi: 10.1002/adma.201803590. Epub 2018 Oct 4.
Heterointerface engineering can be used to develop excellent catalysts through electronic coupling effects between different components or phases. As one kind of promising Pt-free electrocatalysts for hydrogen evolution reaction (HER), pure-phased metal phosphide exhibits the unfavorable factor of strong or weak H*-adsorption performance. Here, 6 nm wall-thick Ni P-NiP hollow nanoparticle polymorphs combining metallic Ni P and metalloid NiP with observable heterointerfaces are synthesized. It shows excellent catalytic performance toward the HER, requiring an overpotential of 59.7 mV to achieve 10 mA cm with a Tafel slope of 58.8 mV dec . Density functional theory calculations verify electrons' transfer from P to Ni at the heterointerfaces, which decreases the absolute value of H* adsorption energy and simultaneously enhance electronic conductivity. That is, the heterojunctions balance the metallic Ni P and the metalloid NiP to form an optimized phosphide polymorph catalyst for the HER. Furthermore, this polymorph combination is used with NiFe-LDH nanosheets to form an alkaline electrolyzer. It shows highly desirable electrochemical properties, which can reach 10 mA cm in 1 m KOH at 1.48 V and be driven by an AAA battery with a nominal voltage of 1.5 V. The work about interfacial charge transfer might provide an insight into designing excellent polymorph catalysts.
异质界面工程可通过不同组分或相之间的电子耦合效应来开发优异的催化剂。作为一类很有前途的不含铂的析氢反应(HER)电催化剂,纯相金属磷化物表现出强或弱 H*-吸附性能的不利因素。在这里,合成了具有可见异质界面的 6nm 壁厚的 NiP-NiP 中空纳米粒子多晶型物,它表现出优异的 HER 催化性能,需要 59.7mV 的过电势才能达到 10mAcm,塔菲尔斜率为 58.8mVdec。密度泛函理论计算验证了电子从 P 到异质界面上 Ni 的转移,这降低了 H*吸附能的绝对值,同时增强了电子导电性。也就是说,异质结平衡了金属 NiP 和类金属 NiP,形成了一种优化的磷化物多晶型催化剂,用于 HER。此外,这种多晶组合与 NiFe-LDH 纳米片结合,形成碱性电解槽。它表现出非常理想的电化学性能,在 1MKOH 中可以在 1.48V 时达到 10mAcm,并且可以由标称电压为 1.5V 的 AAA 电池驱动。关于界面电荷转移的工作可能为设计优异的多晶型催化剂提供了思路。