4.6 Article

Laser-induced atmospheric CuxO formation on copper surface with enhanced electrochemical performance for non-enzymatic glucose sensing

期刊

JOURNAL OF MATERIALS CHEMISTRY C
卷 9, 期 42, 页码 14997-15010

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1tc01289d

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资金

  1. Purdue University's Materials Engineering Department and SMART film Consortium at Birck Nanotechnology Center
  2. School of Material Engineering at Purdue University
  3. U.S. National Science Foundation [DMR-1809520]

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Copper oxide nanostructures were fabricated on copper surfaces using atmospheric laser-induced oxidation technique, showing highly electrochemically active properties for non-enzymatic glucose sensing. Laser processing power could adjust the size, crystallinity, and electroactivity of the generated nano-oxides. Optimized LIO-Cu surfaces exhibited high sensitivity and stability for glucose sensing applications.
Copper oxide nanostructures are widely used for various applications due to their unique optical and electrical properties. In this work, we demonstrate an atmospheric laser-induced oxidation technique for the fabrication of highly electrochemically active copper oxide hierarchical micro/nano structures on copper surfaces to achieve highly sensitive non-enzymatic glucose sensing performance. The effect of laser processing power on the composition, crystallinity, microstructure, wettability, and color of the laser-induced oxide on copper (LIO-Cu) surface was systematically studied using scanning electron microscopy (SEM), grazing incidence X-ray diffraction (GI-XRD), Raman spectroscopy, energy dispersive X-ray spectroscopy (EDX), EDX-mapping, water contact angle measurements, and optical microscopy. Results of these investigations showed a remarkable increase in copper oxide composition by increasing the laser processing power. The pore size distribution and surface area of the pristine and LIO-Cu sample estimated by N-2 adsorption-desorption data showed a developed mesoporous LIO-Cu structure. The size of the generated nano-oxides, crystallinity, and electroactivity of the LIO-Cu were observed to be adjustable by the laser processing power. The electrocatalytic activity of LIO-Cu surfaces was studied by means of cyclic voltammetry (CV) within a potential window of -0.8 to +0.8 V and chronoamperometry in an applied optimized potential of +0.6 V, in 0.1 M NaOH solution and phosphate buffer solution (PBS), respectively. LIO-Cu surfaces with optimized laser processing powers exhibited a sensitivity of 6950 mu A mM(-1) cm(-2) within a wide linear range from 0.01 to 5 mM, with exceptional specificity and response time (<3 seconds). The sensors also showed excellent response stability over a course of 50 days that was originated from the binder-free robust electroactive film fabricated directly onto the copper surface. The demonstrated one-step LIO processing onto commercial metal films, can potentially be applied for tuneable and scalable roll-to-roll fabrication of a wide range of high surface area metal oxide micro/nano structures for non-enzymatic biosensing and electrochemical applications.

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