Engineering a Hierarchy of Disorder: A New Route to Synthesize High‐Performance 3D Nanoporous All‐Carbon Materials**

Author:

Lee Jong Hak12,Loh N. Duane234,Yeo Zhen Yuan234,Ong Yong Kang1,Balakrishnan Deepan34,Limpo Carlos Maria Alava5,Datta Abhik3,Cetin Cagdas1,Ning Shoucong5,Wong Clarissa1,Shi Jian4,Hou Fuchen6,Lin Junhao6,Minamikawa Tadahiro7,Ito Tomonori7,Kamisuki Hiroyuki7,Pennycook Stephen5,Matsudaira Paul34,Özyilmaz Barbaros1258ORCID

Affiliation:

1. Center for Advanced 2D Materials (CA2DM) National University of Singapore Singapore 117546 Singapore

2. Department of Physics National University of Singapore Singapore 117551 Singapore

3. Department of Biological Sciences National University of Singapore Singapore 117558 Singapore

4. Centre for Bio‐imaging Sciences National University of Singapore Singapore 117543 Singapore

5. Department of Materials Science & Engineering National University of Singapore Singapore 117575 Singapore

6. Department of Physics Southern University of Science and Technology Shenzhen Key Laboratory of Advanced Quantum Functional Materials and Devices Southern University of Science and Technology Shenzhen 518055 China

7. Chemical Device Department Murata Manufacturing Co., Ltd Yasu‐shi, Shiga 520‐2393 Japan

8. Institute for Functional Intelligent Materials (I‐FIM) National University of Singapore Singapore 117544 Singapore

Abstract

AbstractA new nanoporous amorphous carbon (NAC) structure that achieves both ultrahigh strength and high electrical conductivity, which are usually incompatible in porous materials is reported. By using modified spark plasma sintering, three amorphous carbon phases with different atomic bonding configurations are created. The composite consisted of an amorphous sp2‐carbon matrix mixed with amorphous sp3‐carbon and amorphous graphitic motif. NAC structure has an isotropic electrical conductivity of up to 12 000 S m−1, Young's modulus of up to ≈5 GPa, and Vickers hardness of over 900 MPa. These properties are superior to those of existing conductive nanoporous materials. Direct investigation of the multiscale structure of this material through transmission electron microscopy, electron energy loss spectroscopy, and machine learning‐based electron tomography revealed that the origin of the remarkable material properties is the well‐organized sp2/sp3 amorphous carbon phases with a core–shell‐like architecture, where the sp3‐rich carbon forms a resilient core surrounded by a conductive sp2‐rich layer. This research not only introduces novel materials with exceptional properties but also opens new opportunities for exploring amorphous structures and designing high‐performance materials.

Funder

National Research Foundation

National University of Singapore

National Natural Science Foundation of China

Science, Technology and Innovation Commission of Shenzhen Municipality

National Research Foundation Singapore

Publisher

Wiley

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