Gao Qiang, Wu Rui, Liu Yang, Zheng Ya-Rong, Li Yi, Shang Li-Mei, Ju Yi-Ming, Gu Chao, Zheng Xu-Sheng, Liu Jian-Wei, Zhu Jun-Fa, Gao Min-Rui, Yu Shu-Hong
Division of Nanomaterials & Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, CAS Center for Excellence in Nanoscience, Hefei Science Center of CAS, Collaborative Innovation Center of Suzhou Nano Science and Technology, Department of Chemistry, University of Science and Technology of China, Hefei 230026, China.
National Synchrotron Radiation Laboratory, University of Science and Technology of China, Hefei 230026, China.
Research (Wash D C). 2019 Aug 18;2019:8078549. doi: 10.34133/2019/8078549. eCollection 2019.
Material interfaces permit electron transfer that modulates the electronic structure and surface properties of catalysts, leading to radically enhanced rates for many important reactions. Unlike conventional thoughts, the nanoscale interfacial interactions have been recently envisioned to be able to affect the reactivity of catalysts far from the interface. However, demonstration of such unlocalized alterations in existing interfacial materials is rare, impeding the development of new catalysts. We report the observation of unprecedented long-range activation of polydymite NiS nanorods through the interfacial interaction created by PdS nanodots (dot-on-rod structure) for high-performance water catalytic electroreduction. Experimental results show that this local interaction can activate NiS rods with length even up to 25 nanometers due to the tailored surface electronic structure. We anticipate that the long-range effect described here may be also applicable to other interfacial material systems, which will aid the development of newly advanced catalysts for modern energy devices.
材料界面允许电子转移,这会调节催化剂的电子结构和表面性质,从而显著提高许多重要反应的速率。与传统观点不同,纳米级界面相互作用最近被认为能够影响远离界面的催化剂的反应活性。然而,在现有的界面材料中,这种非局部改变的实例很少见,这阻碍了新型催化剂的开发。我们报告了通过PdS纳米点(点-棒结构)产生的界面相互作用对硫镍矿型NiS纳米棒进行前所未有的远程活化,用于高效水催化电还原。实验结果表明,由于表面电子结构的定制,这种局部相互作用可以激活长度甚至达到25纳米的NiS棒。我们预计这里描述的远程效应也可能适用于其他界面材料系统,这将有助于开发用于现代能源装置的新型先进催化剂。