Regulation of High‐Index Crystal Facets with Laser‐Induced Periodic Surface Structures on CoFe2O4 Epitaxial Films for Ethanol Gas Sensing

Author:

Fan Lisha123,Xue Xianqiang24,Wu Ling123,Zhang Shuowen123,Zhao Tianzhen123,Wang Tingbin123,Qian Haoyu5,Xie Bo5,Tofil Szymon6,Yao Jianhua123ORCID

Affiliation:

1. College of Mechanical Engineering Zhejiang University of Technology Hangzhou 310023 China

2. Institute of Laser Advanced Manufacturing Zhejiang University of Technology Hangzhou 310023 China

3. Collaborative Innovation Center of High‐end Laser Manufacturing Equipment Zhejiang University of Technology Hangzhou 310023 China

4. College of Materials Science and Engineering Zhejiang University of Technology Hangzhou 310014 China

5. College of Chemical Engineering Zhejiang University of Technology Zhejiang 310014 China

6. Faculty of Mechatronics and Mechanical Engineering Kielce University of Technology Kielce 25‐314 Poland

Abstract

AbstractControl of exposed crystal facets in nanostructures is scientifically important, but technically challenging due to the inherent difficulty in manipulating surface energy of crystals. Here, laser‐induced periodic surface structures (LIPSS) induced by femtosecond laser is applied to produce periodic subwavelength 1D nanostructures with high index crystal facets on epitaxial CoFe2O4 surfaces, providing an efficient, maskless, cost‐effective “top‐down” method for nanostructure fabrication. Homogenous 1D LIPSSs (1D‐LIPSSs) with a period of 131 ± 15 nm and a depth of 90 ± 5 nm are obtained. The orientation of LIPSS nanostructures is finely controlled by tuning the polarization of fs laser beam, therefore flexibly producing 1D‐LIPSSs along various crystallographic orientations. Gas sensing performance evaluation shows that the fabrication of 1D‐LIPSSs on CoFe2O4 enlarges its surface area and contributes to enhanced gas sensing response. Compared to CoFe2O4 with LIPSSs faceted along {100} orientation, CoFe2O4 with LIPSSs faceted along high‐index {110} facets exhibits further improved gas sensing performance, suggesting the critical role of high‐index crystal facets in promoting surface reactivity and sensing sensitivity. The development of a laser‐based nanostructure fabrication route with high controllability of exposed crystal facets provides a novel solution for high‐density film‐based gas sensing applications.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Fundamental Research Funds for the Provincial Universities of Zhejiang

Publisher

Wiley

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