Institute for Clean Energy & Advanced Materials, Faculty of Materials & Energy , Southwest University , Chongqing 400715 , China.
Guizhou Space Appliance Co., Ltd. , Guiyang 550009 , China.
ACS Appl Mater Interfaces. 2018 Dec 5;10(48):41293-41298. doi: 10.1021/acsami.8b13361. Epub 2018 Nov 26.
Ternary metal-element alloys have been reported as efficient electrocatalysts toward various electrochemical reactions, but a unique three-dimensional (3D) Ir-alloyed ternary nanosheet-composed flower (NCF) structure has not been explored yet. Herein, an innovated 1.8 nm Ir-alloyed ultrathin ternary PdIrCu NCF structure is synthesized via one-pot solvothermal reduction without using any surfactant. The as-prepared PdIrCu/C NCF catalyst remarkably improves the stability than commercial Pd/C toward formic acid electrooxidation while resulting in significantly increased mass activity. The improvement of electrocatalytic properties depends on the introduction of Ir and Cu atoms, which greatly prevented poisoning from CO while modifying the electronic structure of Pd for increased reaction active sites and accelerated charge-transfer rate as well as facilitated mass transport by ultrathin NCF 3D structure. Therefore, this catalyst possesses a promising application prospect in electrochemical energy storage/conversion systems.
三元金属元素合金已被报道为各种电化学反应的高效电催化剂,但尚未探索出独特的三维(3D)Ir 合金三元纳米片组成的花(NCF)结构。在此,通过一锅溶剂热还原法,无需使用任何表面活性剂,合成了一种创新的 1.8nm Ir 合金超薄三元 PdIrCu NCF 结构。所制备的 PdIrCu/C NCF 催化剂在甲酸氧化中表现出比商业 Pd/C 更高的稳定性,同时显著提高了质量活性。电催化性能的提高取决于 Ir 和 Cu 原子的引入,这极大地防止了 CO 的中毒,同时修饰了 Pd 的电子结构,增加了反应活性位点,加速了电荷转移速率,并通过超薄 NCF 3D 结构促进了质量传输。因此,该催化剂在电化学储能/转换系统中具有广阔的应用前景。