Precise arrangement of metal atoms at the interface by a thermal printing strategy

Author:

Tian Lin1,Gao Xiaoping2,Wang Sicong2,Chen Cai1,Chen Min1,Guo Wenxin1,Wang Zhe3,Tai Xiaolin2,Han Xiao2,Xu Chenxi4,Ruan Yaner1,Zhu Mengzhao1,Xiong Can1,Yao Tao2,Zhou Huang1,Lin Yue2ORCID,Wu Yuen15ORCID

Affiliation:

1. Deep Space Exploration Laboratory/School of Chemistry and Materials Science, University of Science and Technology of China, Hefei 230026, China

2. Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei 230026, China

3. Preservation Technology, Advanced Research Center, Hefei Hualing Co., Ltd., Hefei 230000, China

4. School of Materials Science and Engineering, Hefei University of Technology, Hefei 230009, China

5. Dalian National Laboratory for Clean Energy, Dalian 116023, China

Abstract

The kinetics and pathway of most catalyzed reactions depend on the existence of interface, which makes the precise construction of highly active single-atom sites at the reaction interface a desirable goal. Herein, we propose a thermal printing strategy that not only arranges metal atoms at the silica and carbon layer interface but also stabilizes them by strong coordination. Just like the typesetting of Chinese characters on paper, this method relies on the controlled migration of movable nanoparticles between two contact substrates and the simultaneous emission of atoms from the nanoparticle surface at high temperatures. Observed by in situ transmission electron microscopy, a single Fe 3 O 4 nanoparticle migrates from the core of a SiO 2 sphere to the surface like a droplet at high temperatures, moves along the interface of SiO 2 and the coated carbon layer, and releases metal atoms until it disappears completely. These detached atoms are then in situ trapped by nitrogen and sulfur defects in the carbon layer to generate Fe single-atom sites, exhibiting excellent activity for oxygen reduction reaction. Also, sites' densities can be regulated by controlling the size of Fe 3 O 4 nanoparticle between the two surfaces. More importantly, this strategy is applicable to synthesize Mn, Co, Pt, Pd, Au single-atom sites, which provide a general route to arrange single-atom sites at the interface of different supports for various applications.

Funder

MOST | National Key Research and Development Program of China

MOST | National Natural Science Foundation of China

安徽省科学技术厅 | Natural Science Foundation of Anhui Province

Key Technologies R&D Program of Anhui

DNL Cooperation Fund, CAS

the USTC Research Funds of the Double First-Class Initiative

Natural Science Foundation of Hefei, China

BUCT | Fundamental Research Funds for the Central Universities of Beijing University of Chemical Technology

the Joint Funds from Hefei National Synchrotron Radiation Laboratory

Youth Innovation Promotion Association of the CAS

Anhui Provincial Natural Science Foundation

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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