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用于电化学传感的激光诱导金属有机框架衍生柔性电极

Laser-Induced Metal-Organic Framework-Derived Flexible Electrodes for Electrochemical Sensing.

作者信息

De Chiara Beatrice, Del Duca Fulvia, Hussain Mian Zahid, Kratky Tim, Banerjee Pritam, Dummert Sarah V, Khoshouei Ali, Chanut Nicolas, Peng Hu, Al Boustani George, Hiendlmeier Lukas, Jinschek Joerg, Ameloot Rob, Dietz Hendrik, Wolfrum Bernhard

机构信息

Neuroelectronics, Munich Institute of Biomedical Engineering, Department of Electrical Engineering, School of Computation, Information and Technology, Technical University of Munich, Hans-Piloty-Str. 1, 85748 Garching, Germany.

Chair of Inorganic and Metal-Organic Chemistry, Department of Chemistry, School of Natural Sciences, Technical University of Munich, Lichtenbergstr. 4, 85748 Garching, Germany.

出版信息

ACS Appl Mater Interfaces. 2025 Jan 15;17(2):3772-3784. doi: 10.1021/acsami.4c18243. Epub 2025 Jan 6.

Abstract

The successful development of a metal-organic framework (MOF)-derived Co/CoO/C core-shell composite integrated into laser-induced graphitic (LIG) carbon electrodes for electrochemical sensing is reported. The sensors are fabricated via a direct laser scribing technique using a UV laser (355 nm wavelength) to induce the photothermolysis of rationally selected ZIF-67 into the LIG matrix. Electrochemical characterization reveals that the incorporation of the laser-scribed ZIF-67-derived composite on the electrode surface reduces the impedance more than 100 times compared with bare LIG sensors. Comprehensive morphological, structural, and chemical analyses confirm the formation of porous LIG from the laser irradiation of polyimide, while the LIG+ZIF-67-derived composites feature size-controlled and uniformly distributed Co/CoO core/shell nanoparticles (NPs) in the semihollow wasp-nest-like carbon matrix from photothermal decomposition of ZIF-67, embedded within the LIG electrode area. The high surface area and porosity of this ZIF-67-derived nitrogen-rich carbon facilitate charge transfer processes, whereas size-controlled Co/CoO core/shell NPs offer accessible electrochemical active sites, making these LIG+ZIF-67-derived composite-based sensors promising materials for applications requiring high charge injection capability and low electrode/electrolyte interface impedance. The PI+Z67 sensor exhibited a 400 times higher specific capacitance (2.4 mF cm) compared to the PI sensor (6 μF cm). This laser scribing approach enables the rapid and cost-effective fabrication of high-performance electrochemical sensors enhanced by the integration of tailored MOF-derived composites.

摘要

报道了一种集成到激光诱导石墨(LIG)碳电极中用于电化学传感的金属有机框架(MOF)衍生的Co/CoO/C核壳复合材料的成功开发。这些传感器是通过直接激光划刻技术制造的,使用紫外激光(波长355 nm)将合理选择的ZIF-67光热分解为LIG基质。电化学表征表明,与裸LIG传感器相比,电极表面激光划刻的ZIF-67衍生复合材料的掺入使阻抗降低了100倍以上。全面的形态、结构和化学分析证实,聚酰亚胺的激光辐照形成了多孔LIG,而LIG+ZIF-67衍生复合材料的特征是在半中空黄蜂巢状碳基质中由ZIF-67光热分解产生尺寸可控且均匀分布的Co/CoO核/壳纳米颗粒(NPs),嵌入在LIG电极区域内。这种ZIF-67衍生的富氮碳的高表面积和孔隙率促进了电荷转移过程,而尺寸可控的Co/CoO核/壳NPs提供了可及的电化学活性位点,使这些基于LIG+ZIF-67衍生复合材料的传感器成为需要高电荷注入能力和低电极/电解质界面阻抗的应用的有前途材料。与PI传感器(6 μF cm)相比,PI+Z67传感器的比电容(2.4 mF cm)高出400倍。这种激光划刻方法能够通过集成定制的MOF衍生复合材料快速且经济高效地制造高性能电化学传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cffe/11744510/2da225a825ae/am4c18243_0001.jpg

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