Zeng Zheng, Zhang Wendi, Arvapalli Durga M, Bloom Brian, Sheardy Alex, Mabe Taylor, Liu Yiyang, Ji Zuowei, Chevva Harish, Waldeck David H, Wei Jianjun
Department of Nanoscience, Joint School of Nanoscience and Nanoengineering, University of North Carolina at Greensboro, Greensboro, NC 27401, USA.
Phys Chem Chem Phys. 2017 Aug 2;19(30):20101-20109. doi: 10.1039/c7cp02875j.
Carbon nanodots (CNDs) have attracted great attention due to their superior solubility, biocompatibility, tunable photoluminescence, and opto-electronic properties. This work describes a new fluorescence-based spectroelectrochemistry approach to simultaneously study the photoluminescence and wavelength dependent photocurrent of microwave synthesized CNDs. The fluorescence of CNDs shows selective quenching upon a reversible redox couple, ferricyanide/ferrocyanide, reaction during cyclic voltammetry. The CND modified gold slide electrode demonstrates wavelength dependent photocurrent generation during the fluorescence-electrochemical study, suggesting the potential application of CNDs in photoelectronics. UV-Vis absorption and electrochemistry are used to quantify the energy gap of the CNDs, and then to calibrate a Hückel model for CNDs' electronic energy levels. The Hückel (or tight binding) model treatment of an individual CND as a molecule combines the conjugated π states (C[double bond, length as m-dash]C) with the functional groups (C[double bond, length as m-dash]O, C-O, and COOH) associated with the surface electronic states. This experimental and theoretical investigation of CNDs provides a new perspective on the optoelectronic properties of CNDs and should aid in their development for practical use in biomedicine, chemical sensing, and photoelectric devices.
碳纳米点(CNDs)因其优异的溶解性、生物相容性、可调谐的光致发光和光电特性而备受关注。本文描述了一种基于荧光的光谱电化学新方法,用于同时研究微波合成的碳纳米点的光致发光和波长依赖性光电流。在循环伏安法过程中,当可逆氧化还原对铁氰化物/亚铁氰化物发生反应时,碳纳米点的荧光会出现选择性猝灭。在荧光电化学研究中,碳纳米点修饰的金载玻片电极表现出波长依赖性光电流产生,这表明碳纳米点在光电子学中的潜在应用。利用紫外-可见吸收光谱和电化学方法来量化碳纳米点的能隙,进而校准用于描述碳纳米点电子能级的休克尔模型。将单个碳纳米点作为分子进行休克尔(或紧束缚)模型处理,将共轭π态(C=C)与与表面电子态相关的官能团(C=O、C-O和COOH)结合起来。对碳纳米点的这一实验和理论研究为其光电特性提供了新的视角,并应有助于推动其在生物医学、化学传感和光电器件等实际应用中的发展。
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