State Key Lab of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Beijing Key Laboratory of Energy Environmental Catalysis, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Chemistry. 2018 Aug 9;24(45):11748-11754. doi: 10.1002/chem.201801964. Epub 2018 Jul 16.
The phase of nanocrystals has a key role in the modulation of catalytic properties. Uniform and well-crystallized nickel phosphide nanocrystals with controlled phases (Ni P , Ni P, and Ni P ) and narrow size distributions are synthesized by a wet chemical method. The phases of the as-synthesized nickel phosphide nanocrystals are controlled by the P/Ni precursor molar ratio, heating process, and time of reaction. Rarely reported nearly monodisperse 5.6 nm Ni P nanocrystals are successfully synthesized and show superior hydrogen evolution reaction (HER) activity. Only a low overpotential of 103 mV is required to achieve the HER current of 10 mA cm at a low catalyst loading of 0.12 mg cm . The high HER activity is attributed to the high quality of the as-obtained Ni P nanocrystals, which have the electronic effect from the Ni P phase and also high surface area owing to the small particle size. A systematic study of the controlled synthesis of nickel phosphide nanocrystals is shown in this paper, and the HER catalytic activity is improved through the phase- and size-controlled synthesis of nanocrystals.
纳米晶体的相在调节催化性能方面起着关键作用。通过湿化学方法合成了具有均匀、结晶良好且尺寸分布窄的可控相(NiP、NiP 和 NiP)的镍磷纳米晶体。所合成的镍磷纳米晶体的相通过前驱体 P/Ni 摩尔比、加热过程和反应时间来控制。成功合成了罕见报道的近单分散 5.6nm NiP 纳米晶体,并表现出优异的析氢反应(HER)活性。在低催化剂负载量为 0.12mgcm 时,仅需 103mV 的低过电势即可实现 10mAcm 的 HER 电流。高 HER 活性归因于所获得的 NiP 纳米晶体的高质量,其具有来自 NiP 相的电子效应,并且由于颗粒尺寸小而具有高表面积。本文展示了镍磷纳米晶体的可控合成的系统研究,并通过纳米晶体的相和尺寸控制合成提高了 HER 催化活性。