Han Geun-Ho, Xiao Xiangyun, Hong Jaeyoung, Lee Kyu-Joon, Park Soohyung, Ahn Jae-Pyoung, Lee Kwan-Young, Yu Taekyung
Department of Chemical and Biological Engineering , Korea University , Seoul 02841 , Republic of Korea.
Department of Chemical Engineering , Kyung Hee University , Yongin 17104 , Republic of Korea.
ACS Appl Mater Interfaces. 2020 Feb 5;12(5):6328-6335. doi: 10.1021/acsami.9b21558. Epub 2020 Jan 24.
To obtain high catalytic properties, finely modulating the electronic structure and active sites of catalysts is important. Herein, we report the design and economical synthesis of Pd@Pt core-shell nanoparticles for high productivity in the direct synthesis of hydrogen peroxide. Pd@Pt core-shell nanoparticles with a partially covered Pt shell on a Pd cube were synthesized using a simple direct seed-mediated growth method. The synthesized Pd@Pt core-shell nanoparticles were composed of high index faceted Pt on the corners and edges, while the Pd-Pt alloy was located on the terrace area of the Pd cubes. Because of the high-indexed Pt and Pd-Pt alloy sites, the synthesized concave Pd@Pt nanoparticles exhibited both high H conversion and HO selectivity compared with Pd cubes.
为了获得高催化性能,精细调节催化剂的电子结构和活性位点至关重要。在此,我们报道了用于过氧化氢直接合成中高生产率的Pd@Pt核壳纳米粒子的设计与经济合成。通过简单的直接种子介导生长法合成了在Pd立方体上具有部分覆盖Pt壳的Pd@Pt核壳纳米粒子。合成的Pd@Pt核壳纳米粒子在角和边缘处由高指数刻面的Pt组成,而Pd-Pt合金位于Pd立方体的平台区域。由于高指数的Pt和Pd-Pt合金位点,与Pd立方体相比,合成的凹面Pd@Pt纳米粒子表现出高的H转化率和HO选择性。