Leka Kottaiveedu Sivakumar Indhu, Bouffier Laurent, Sojic Neso, Senthil Kumar Shanmugam
Electrodics and Electrocatalysis Division, CSIR-Central Electrochemical Research Institute (CSIR-CECRI), Karaikudi, Tamil Nadu, 630003, India.
Academy of Scientific and Innovation Research (AcSIR), Ghaziabad, 201002, India.
Angew Chem Int Ed Engl. 2025 Mar 3;64(10):e202421185. doi: 10.1002/anie.202421185. Epub 2024 Dec 27.
Electrochemiluminescence (ECL) of the conventional system of [Ru(bpy)] luminophore and amine-based coreactants is particularly inefficient on noble metal electrodes. This is due to the formation of a passivating oxide layer on the metal surface inhibiting the electro-oxidation of amines like tri-n-propylamine (TPrA) coreactant. Herein, we demonstrated the enhancement of ECL emission on gold surface by hydroxyl radicals attack that are chemically generated with Cu-Fenton reagent. These radicals selectively deactivate the gold active sites and knockout the metal surface asperities that counterintuitively led to an amplification of the ECL emission. Atomic force microscopy shows a massive smoothening of the surface. The electrochemical characterization proves that the involved ECL reaction mechanism switches from direct oxidation to catalytic route, where the kinetics of indirect TPrA oxidation is facilitated on deactivated gold surface. Besides, in situ smoothening of a rough electrode in presence of tandem [Ru(bpy)]/TPrA enables Cu sensing with good reliability and limit of detection. Such atomically smoothened and corrosion-resistant gold surface readily tuned the ECL reactivity and opened new directions on influence of topography and reactivity on ECL mechanisms, thus will be extremely useful for the future development of ECL imaging strategies and highly sensitive ECL sensors.
基于[Ru(bpy)]发光体与胺基共反应剂的传统体系的电化学发光(ECL)在贵金属电极上效率特别低。这是由于在金属表面形成了一层钝化氧化层,抑制了三正丙胺(TPrA)等胺类共反应剂的电氧化。在此,我们证明了通过用铜-芬顿试剂化学产生的羟基自由基攻击金表面,可以增强ECL发射。这些自由基选择性地使金活性位点失活,并消除金属表面的粗糙度,这反而导致了ECL发射的放大。原子力显微镜显示表面有大量的平滑化。电化学表征证明,所涉及的ECL反应机制从直接氧化转变为催化途径,其中在失活的金表面上促进了间接TPrA氧化的动力学。此外,在串联的[Ru(bpy)]/TPrA存在下对粗糙电极进行原位平滑化,可以可靠地检测铜,检测限良好。这种原子级平滑且耐腐蚀的金表面很容易调节ECL反应活性,并为形貌和反应活性对ECL机制的影响开辟了新方向,因此对未来ECL成像策略和高灵敏度ECL传感器的发展将极为有用。