Electrothermally‐Driven Ultrafast Chemical Modulation of Multifunctional Nanocarbon Aerogels

Author:

Xia Dong12ORCID,Li Qun3,Mannering Jamie2,Qin Yi1,Li Heng4,Xu Yifei5,Ahamed Ashiq6,Zhou Wenyu3,Kulak Alexander2,Huang Peng6

Affiliation:

1. Department of Engineering Science University of Oxford Oxford OX1 3PJ UK

2. School of Chemistry University of Leeds Leeds LS2 9JT UK

3. School of Chemistry and Chemical Engineering Chongqing University Chongqing 400044 China

4. Key Laboratory of Estuarine Ecological Security and Environmental Health, Tan Kah Kee College Xiamen University Zhangzhou 363105 China

5. State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science Fudan University Shanghai 200438 China

6. Henry Royce Institute The University of Manchester Manchester M13 9PL UK

Abstract

AbstractUltrahigh‐temperature Joule‐heating of carbon nanostructures opens up unique opportunities for property enhancements and expanded applications. This study employs rapid electrical Joule‐heating at ultrahigh temperatures (up to 3000 K within 60 s) to induce a transformation in nanocarbon aerogels, resulting in highly graphitic structures. These aerogels function as versatile platforms for synthesizing customizable metal oxide nanoparticles while significantly reducing carbon emissions compared to conventional furnace heating methods. The thermal conductivity of the aerogel, characterized by Umklapp scattering, can be precisely adjusted by tuning the heating temperature. Utilizing the aerogel's superhydrophobic properties enables its practical application in filtration systems for efficiently separating toxic halogenated solvents from water. The hierarchically porous aerogel, featuring a high surface area of 607 m2 g−1, ensures the uniform distribution and spacing of embedded metal oxide nanoparticles, offering considerable advantages for catalytic applications. These findings demonstrate exceptional catalytic performance in oxidative desulfurization, achieving a 98.9% conversion of dibenzothiophene in the model fuel. These results are corroborated by theoretical calculations, surpassing many high‐performance catalysts. This work highlights the pragmatic and highly efficient use of nanocarbon structures in nanoparticle synthesis under ultrahigh temperatures, with short heating durations. Its broad implications extend to the fields of electrochemistry, energy storage, and high‐temperature sensing.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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