Self‐Catalyzed Hydrogenated Carbon Nano‐Onions Facilitates Mild Synthesis of Transparent Nano‐Polycrystalline Diamond

Author:

Ma Shuailing123ORCID,Zhao Yongsheng23,Li Hailong45,Farla Robert3,Zhang Zihan6,Zhou Chao6,Zhao Xingbin1,Huang Yanping1,Liu Yanhui1,Bao Kuo6,Yang Bin2,Yang Xigui7,Zhu Pinwen6,Tao Qiang6,Cui Tian16

Affiliation:

1. Institute of High Pressure Physics School of Physical Scientific and Technology Ningbo University Ningbo 315211 China

2. Center for High Pressure Science & Technology Advanced Research Beijing 100094 China

3. Deutsches Elektronen‐Synchrotron DESY Notkestrasse, 85 22607 Hamburg Germany

4. State Key Laboratory of Fine Chemicals School of Chemical Engineering Dalian University of Technology Dalian 116024 China

5. Max‐Planck‐Institute for Polymer Research Department of Physics at Interfaces Ackermannweg 10 55128 Mainz Germany

6. Synergetic Extreme Condition High‐Pressure Science Center State Key Laboratory of Superhard Materials College of Physics Jilin University Changchun 130012 China

7. Henan Key laboratory of Diamond Optoelectronic Materials and Devices Key Laboratory of Material Physics Mistry of Education School of Physics Zhengzhou University Zhengzhou 450052 China

Abstract

AbstractTransparent nano‐polycrystalline diamond (t‐NPD) possesses superior mechanical properties compared to single and traditional polycrystalline diamonds. However, the harsh synthetic conditions significantly limit its synthesis and applications. In this study, a synthesis routine is presented for t‐NPD under low pressure and low temperature conditions, 10 GPa, 1600 °C and 15 GPa, 1350 °C similar with the synthesis condition of organic precursor. Self‐catalyzed hydrogenated carbon nano‐onions (HCNOs) from the combustion of naphthalene enable synthesis under nearly industrial conditions, which are like organic precursor and much lower than that of graphite and other carbon allotropes. This is made possible thanks to the significant impact of hydrogen on the thermodynamics, as it chemically facilitates phase transition. Ubiquitous nanotwinned structures are observed throughout t‐NPD due to the high concentration of puckered layers and stacking faults of HCNOs, which impart a Vickers hardness about 140 GPa. This high hardness and optical transparency can be attributed to the nanocrystalline grain size, thin intergranular films, absence of secondary phase and pore‐free features. The facile and industrial‐scale synthesis of the HCNOs precursor, and mild synthesis conditions make t‐NPD suitable for a wide range of potential applications.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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