慶應義塾大学 · 生化学・遺伝学・分子生物学
アンドレア・フィオラーニ教授の研究室は、電気化学的発光(ECL)を基盤とした高感度・高安定性のバイオセンシング技術の開発を主眼としています。特に、ボロンドーピングダイヤモンド電極を用いたECL発光の制御や、外部添加剤を不要とする内発的過酸化水素生成による発光系の構築が特徴です。細胞イメージングや医療診断への応用を視野に入れ、電極材料と発光プロセスの最適化を進めています。
Figures are computed from collected data and may differ slightly.
Electrochemiluminescence (ECL) microscopy is an emerging technique with a wide range of imaging applications and unique properties in terms of high spatial resolution, surface confinement and favourable signal-to-noise ratio. Despite its successful analytical applications, tuning the depth of field (<i>i.e.</i>, thickness of the ECL-emitting layer) is a crucial issue. Indeed, the control of the thickness of this ECL region, which can be considered as an "evanescent" reaction layer, limits the de
The electrogenerated chemiluminescence of luminol is a process by which light generation is triggered by adding hydrogen peroxide and then applying a suitable electrode potential. Here, we take this phenomenon one step forward by avoiding the addition of hydrogen peroxide using a smart combination of a boron-doped diamond electrode and a carbonate electrolyte to generate the hydrogen peroxide directly in situ. The reaction occurs because of the carbonate electrochemical oxidation to peroxydicarb
We report on the use of boron doped diamond electrodes for the electrochemiluminescence (ECL) of the coreactant peroxydisulfate and the luminophore ruthenium(II)-tris(2,2'-bipyridine). Compared to common electrode materials (i.e., Pt, Au, glassy carbon), boron doped diamond has a large overpotential for the evolution of hydrogen in aqueous electrolyte solutions. This intrinsic feature enables reductive-oxidation ECL with peroxydisulfate to be obtained without interference from hydrogen evolution
Electrochemiluminescence (ECL) is a powerful transduction technique where light emission from a molecular species is triggered by an electrochemical reaction. Application to biosensors has led to a wide range of electroanalytical methods with particular impact on clinical analysis for diagnostic and therapeutic monitoring. Therefore, the quest for increasing the sensitivity while maintaining reproducible and easy procedures has brought investigations and innovations in (i) electrode materials, (
Abstract Sensors rely on a plurality of transduction methods, and among the available selections, electrochemical techniques offer the peculiar advantage of an easy interfacing between biological recognition elements and electronic signal transduction processes. Furthermore, electrochemical devices are qualified for decentralized point‐of‐care testing as they can be easily downsized and made at low cost for a wide range of potential applications, for example biomedical or environmental. Electroc
Electrogenerated chemiluminescence (ECL) refers to the phenomenon of light emission from molecular species which is triggered by an electrochemical reaction. Therefore, like most electrochemical systems, the electrode material plays a pivotal role and much effort has been made in order to find the best material for ECL, in terms of light signal intensity and long-term stability, especially after the development of ECL for analytical applications. In this article, we will introduce and highlight
Abstract Increasing the light emission of electrogenerated chemiluminescence is an important goal for enhancing the sensitivity for potential practical applications. Electrogenerated chemiluminescence is primarily triggered by a heterogeneous electron transfer reaction, for which the electrode material plays a pivotal role. We investigated how a platinum electrode, one of the most used but poorly efficient noble metal electrode materials in electrogenerated chemiluminescence, can be modified to
In this study, we investigated ammonia synthesis from electrochemical nitrate reduction using a boron-doped diamond (BDD) electrode. Several parameters were optimized, including the boron doping level in BDD, reduction potential, cell type, and electrolyte, to reach an ammonia production rate of 67 ± 12 μmol cm–2 h–1 with a Faradaic efficiency of 98 ± 6%. The ammonia production rate could be enhanced up to 184 μmol cm–2 h–1 by adjusting the boron doping level. From kinetic measurements during am
In this work, we quantify the electrogenerated chemiluminescence arising from the reaction of electrogenerated tris(bipyridine)ruthenium(iii) with hydroxyl ions, in terms of emission intensity and reaction rate. Different electrode materials (glassy carbon and boron-doped diamond) and different supporting electrolytes (perchlorate, phosphate, and carbonate) were investigated with pH variation. Relative quantification of the electrogenerated chemiluminescence was achieved using the Ru(bpy)<sub>3<
A photo-assisted electrochemical system converting CO 2 into formic acid by photoelectrochemical water oxidation at TiO 2 nanotubes coupled with electrochemical CO 2 reduction at boron-doped diamond.
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