Ultra‐Low Pt Doping and Pt–Ni Pair Sites in Amorphous/Crystalline Interfacial Electrocatalyst Enable Efficient Alkaline Hydrogen Evolution

Author:

Li Yanxin1,Zhang Xiaoyan1,Liu Lin1,Sheng Hongbin1,Li Can2,Cao Lixin1,Li Haiyan1,Xia Chenghui1,Dong Bohua13ORCID

Affiliation:

1. School of Materials Science and Engineering Ocean University of China 238 Songling Road Qingdao Shandong Province 266100 P. R. China

2. Institute of Optoelectronic Materials and Devices College of Optical and Electronic Technology China Jiliang University 256 Xueyuan Street Hangzhou Zhejiang 310018 P. R. China

3. Center for Ocean Carbon Neutrality Ocean University of China 238 Songling Road Qingdao Shandong Province 266100 P. R. China

Abstract

AbstractNoble metal doping can achieve an increase in mass activity (MA) without sacrificing catalysis efficiency and stability, so that alkaline hydrogen evolution reaction (HER) performance of the catalyst can be optimized to the maximum degree. However, its excessively large ionic radius makes it difficult to achieve either interstitial doping or substitutional doping under mild conditions. Herein, a hierarchical nanostructured electrocatalyst with enriched amorphous/crystalline interfaces for high‐efficiency alkaline HER is reported, which is composed of amorphous/crystalline (Co, Ni)11(HPO3)8(OH)6 homogeneous hierarchical structure with an ultra‐low doped Pt (Pt‐a/c‐NiHPi). Benefiting from the structural flexibility of the amorphous component, extremely low Pt (0.21 wt.%, totally 3.31 µg Pt on 1 cm−2 NF) are stably doped on it via a simple two‐phase hydrothermal method. The DFT calculations show that due to the strongly electron transfer between the crystalline/amorphous components at the interfaces, electrons finally concentrate toward Pt and Ni in the amorphous components, thus the electrocatalyst has near‐optimal energy barriers and adsorption energy for H2O* and H*. With the above benefits, the obtained catalyst exhibits an exceptionally high MA (39.1 mA µg−1Pt) at 70 mV, which is almost the highest level among the reported Pt‐based electrocatalysts for alkaline HER.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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