Ghorbal Achraf, Grisotto Federico, Charlier Julienne, Palacin Serge, Goyer Cédric, Demaille Christophe, Brahim Ammar Ben
Applied Thermodynamics Research Unit, National Engineering School of Gabès, Gabès University, Rue Omar Ibn-Elkhattab, 6029 Gabes, Tunisia.
Laboratory of Chemistry of Surfaces and Interfaces, DSM/IRAMIS/SPCSI, Atomic Energy Commission of Saclay, 91191 Gif-sur-Yvette, France.
Nanomaterials (Basel). 2013 May 17;3(2):303-316. doi: 10.3390/nano3020303.
This study demonstrates the advantages of the combination between atomic force microscopy and scanning electrochemical microscopy. The combined technique can perform nano-electrochemical measurements onto agarose surface and nano-electrografting of non-conducting polymers onto conducting surfaces. This work was achieved by manufacturing an original Atomic Force Microscopy-Scanning ElectroChemical Microscopy (AFM-SECM) electrode. The capabilities of the AFM-SECM-electrode were tested with the nano-electrografting of vinylic monomers initiated by aryl diazonium salts. Nano-electrochemical and technical processes were thoroughly described, so as to allow experiments reproducing. A plausible explanation of chemical and electrochemical mechanisms, leading to the nano-grafting process, was reported. This combined technique represents the first step towards improved nano-processes for the nano-electrografting.
本研究展示了原子力显微镜与扫描电化学显微镜相结合的优势。这种组合技术能够在琼脂糖表面进行纳米电化学测量,并将非导电聚合物纳米电接枝到导电表面上。这项工作是通过制造一个原创的原子力显微镜 - 扫描电化学显微镜(AFM - SECM)电极来实现的。利用芳基重氮盐引发的乙烯基单体纳米电接枝对AFM - SECM电极的性能进行了测试。对纳米电化学及技术过程进行了详尽描述,以便能够重复实验。报告了对导致纳米接枝过程的化学和电化学机理的合理阐释。这种组合技术是迈向改进纳米电接枝纳米工艺的第一步。