Electroconductive high-entropy metallic oxide ceramic composites with outstanding water evaporation ability and biocompatibility

Chong Wang, Jie Pan, Fucong Lyu, Yunchen Long, Hongkun Li, Chenghao Zhao, Lu Yao, Zebiao Li, Weihui Ou, Binbin Zhou, Jie Shen, Jingchen Wang, Yaxin Xu, Zhengyi Mao, Yingxian Chen, Xufen Xiao, Gemeng Liang, Ni Zeng, Jian Lu, Yang Yang Li

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

1 Citation (Scopus)

Abstract

Electroconductive ceramics were a class of materials that exhibited metal-like conductivity while also retaining the beneficial properties of ceramics. Currently, they were ceramic composites generally fabricated by sintering ceramic powders with conductive additives such as graphene or single-wall carbon nanotubes, which were expensive and often suffered from poor dispersibility and low performance. To address these issues, we developed a novel and facile sol–gel approach for synthesizing electroconductive ceramic composites. In this work, we have successfully synthesized high-entropy metallic (Ti, Mg, Al, Zr) oxide ceramic composites using cost-effective organic metallic coupling agents in a “one-pot” synthesis. Subsequent thermal sintering produced the ceramic composites with dramatically reduced resistivity through the creation of oxygen vacancies and homogeneous in situ graphitization. The resulting electroconductive ceramic composites also possessed remarkable mechanical properties, photothermal conversion ability, and biocompatibility. To the best of our knowledge, this was the first time that electroconductive high-entropy ceramic composites have been synthesized using organic metallic coupling agents. This work offered new potential for the fields of electro-discharge machining (EDM) processing, electronics, energy, solar-driven photothermal engineering, and biomedical industries, allowing easy and inexpensive production of electroconductive ceramic composites with unique properties. Graphical Abstract: (Figure presented.) © The Author(s), under exclusive licence to Springer Nature Switzerland AG 2024.
Original languageEnglish
Article number109
JournalAdvanced Composites and Hybrid Materials
Volume7
Issue number4
Online published25 Jun 2024
DOIs
Publication statusPublished - Aug 2024

Funding

This work was supported by the Shenzhen-Hong Kong Science and Technology Innovation Cooperation Zone Shenzhen Park Project (Project No. HZQB-KCZYB-2020030), Hong Kong Innovation and Technology Support Program (Project No. 9440216, ITC Project Reference: ITS/460/18), The Open Project of Yunnan Precious Metals Laboratory Co.,Ltd (YPML-2023050248), The National Key R&D Program of China (Project No. 2017YFA0204403), Shenzhen Science and Technology Innovation Committee (Project No. JCYJ20200109113212238), Shenzhen Science and Technology Program (Project No. JCYJ20220818101204010), and the Hong Kong Innovation and Technology Commission via the Hong Kong Branch of National Precious Metals Material Engineering Research Center.

Research Keywords

  • Biocompatible
  • Electroconductive
  • High-entropy
  • In situ graphitization
  • Oxygen vacancy
  • Photothermal conversion

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