| Literature DB >> 32253801 |
Peng-Fei Yin1,2,3, Ming Zhou2, Junze Chen2, Chaoliang Tan2, Guigao Liu2, Qinglang Ma2, Qinbai Yun2, Xiao Zhang2, Hongfei Cheng2, Qipeng Lu4, Bo Chen2, Ye Chen2, Zhicheng Zhang2, Jingtao Huang2, Dianyi Hu2, Jie Wang2, Qing Liu5, Zhiyong Luo2, Zhengqing Liu2, Yiyao Ge2, Xue-Jun Wu6, Xi-Wen Du3, Hua Zhang1,7.
Abstract
Phase engineering of nanomaterials (PEN) offers a promising route to rationally tune the physicochemical properties of nanomaterials and further enhance their performance in various applications. However, it remains a great challenge to construct well-defined crystalline@amorphous core-shell heterostructured nanomaterials with the same chemical components. Herein, the synthesis of binary (Pd-P) crystalline@amorphous heterostructured nanoplates using Cu3- χ P nanoplates as templates, via cation exchange, is reported. The obtained nanoplate possesses a crystalline core and an amorphous shell with the same elemental components, referred to as c-Pd-P@a-Pd-P. Moreover, the obtained c-Pd-P@a-Pd-P nanoplates can serve as templates to be further alloyed with Ni, forming ternary (Pd-Ni-P) crystalline@amorphous heterostructured nanoplates, referred to as c-Pd-Ni-P@a-Pd-Ni-P. The atomic content of Ni in the c-Pd-Ni-P@a-Pd-Ni-P nanoplates can be tuned in the range from 9.47 to 38.61 at%. When used as a catalyst, the c-Pd-Ni-P@a-Pd-Ni-P nanoplates with 9.47 at% Ni exhibit excellent electrocatalytic activity toward ethanol oxidation, showing a high mass current density up to 3.05 A mgPd -1 , which is 4.5 times that of the commercial Pd/C catalyst (0.68 A mgPd -1 ).Entities:
Keywords: amorphous; ethanol oxidation reaction; heterostructures; nanoplates
Year: 2020 PMID: 32253801 DOI: 10.1002/adma.202000482
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849