Centimeter-sized diamond composites with high electrical conductivity and hardness

Author:

Yang Xigui12ORCID,Zang Jinhao1,Zhao Xingju1ORCID,Ren Xiaoyan1ORCID,Ma Shuailing3ORCID,Zhang Zhuangfei1,Zhang Yuewen1,Li Xing1ORCID,Cheng Shaobo12,Li Shunfang1ORCID,Liu Bingbing4,Shan Chongxin12ORCID

Affiliation:

1. Henan Key Laboratory of Diamond Optoelectronic Materials and Devices, Key Laboratory of Materials Physics, Ministry of Education, School of Physics and Microelectronics, Zhengzhou University, Zhengzhou 450001, China

2. Institute of Quantum Materials and Physics, Henan Academy of Sciences, Zhengzhou 450046, China

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

4. State Key Laboratory of Superhard Materials, College of Physics, Jilin University, Changchun 130012, China

Abstract

Achieving high-performance materials with superior mechanical properties and electrical conductivity, especially in large-sized bulk forms, has always been the goal. However, it remains a grand challenge due to the inherent trade-off between these properties. Herein, by employing nanodiamonds as precursors, centimeter-sized diamond/graphene composites were synthesized under moderate pressure and temperature conditions (12 GPa and 1,300 to 1,500 °C), and the composites consisted of ultrafine diamond grains and few-layer graphene domains interconnected through covalently bonded interfaces. The composites exhibit a remarkable electrical conductivity of 2.0 × 10 4 S m −1 at room temperature, a Vickers hardness of up to ~55.8 GPa, and a toughness of 10.8 to 19.8 MPa m 1/2 . Theoretical calculations indicate that the transformation energy barrier for the graphitization of diamond surface is lower than that for diamond growth directly from conventional sp 2 carbon materials, allowing the synthesis of such diamond composites under mild conditions. The above results pave the way for realizing large-sized diamond-based materials with ultrahigh electrical conductivity and superior mechanical properties simultaneously under moderate synthesis conditions, which will facilitate their large-scale applications in a variety of fields.

Funder

MOST | National Natural Science Foundation of China

Publisher

Proceedings of the National Academy of Sciences

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