Role of nanocellulose in tailoring electroanalytical performance of hybrid nanocellulose/multiwalled carbon nanotube electrodes

被引:0
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作者
Vasuki Durairaj
Touko Liljeström
Niklas Wester
Peter Engelhardt
Sami Sainio
Benjamin P. Wilson
Panpan Li
Katri S. Kontturi
Tekla Tammelin
Tomi Laurila
Jari Koskinen
机构
[1] Aalto University,Department of Chemistry and Materials Science, School of Chemical Engineering
[2] Aalto University,Department of Applied Physics, School of Science
[3] Stanford Synchrotron Radiation Lightsource,SLAC National Accelerator Laboratory
[4] University of Oulu,Microelectronics Research Unit, Faculty of Information Technology and Electrical Engineering
[5] Aalto University,Department of Chemical and Metallurgical Engineering, School of Chemical Engineering
[6] VTT Technical Research Centre of Finland,Sustainable Products and Materials
[7] Aalto University,Department of Electrical Engineering and Automation, School of Electrical Engineering
来源
Cellulose | 2022年 / 29卷
关键词
Nanocellulose; Carbon nanotubes; Hybrid materials; Electrochemical;
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学科分类号
摘要
Nanocellulose has emerged as a promising green dispersant for carbon nanotubes (CNTs), and there is an increasing trend in developing nanocellulose/CNT hybrid materials for electrochemical detection of various small molecules. However, there have been very few comprehensive studies investigating the role of nanocellulosic material properties upon the electroanalytical performance of the resultant hybrid electrodes. In this work, we demonstrate the influence of both nanocellulose functionalization and geometry, utilizing sulfated cellulose nanocrystals, sulfated cellulose nanofibers, and TEMPO-oxidized cellulose nanofibers. Transmission electron microscopy tomography enables direct visualization of the effect of nanocellulosic materials on the hybrid architectures. High resolution X-ray absorption spectroscopy verifies that the chemical nature of CNTs in the different hybrids is unmodified. Electroanalytical performances of the different nanocellulose/CNT hybrid electrodes are critically evaluated using physiologically relevant biomolecules with different charge such as, dopamine (cationic), paracetamol (neutral), and uric acid (anionic). The hybrid electrode containing fibrillar nanocellulose geometry with a high degree of sulfate group functionalization provides the highest electroanalytical sensitivity and strongest enrichment towards all studied analytes. These results clearly demonstrate for the first time, the extent of tailorability upon the electroanalytical response of nanocellulose/CNT hybrid electrodes towards different biomolecules, offered simply by the choice of nanocellulosic materials.
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页码:9217 / 9233
页数:16
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