Carbon Dots as a Fluorescence pH Nanosensor by Application of an Active Surface Preservation Strategy

A. C. P. Afonso, Luís Pinto da Silva
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Abstract

In the environmental, industrial, and biomedical fields, pH monitorization is of the upmost importance. However, the most used type of pH sensors, glass pH-electrodes, still present limitations in their application in low volume samples and in cellular pH sensing, due to their size and invasive nature. Fluorescence-based sensors present a solution to such issues, providing a non-invasive solution to pH sensing. Herein, we report the rational development of carbon dots (CDs) as a pH nanosensor via an active surface preservation (ASP) method. Carbon dots (CDs) are carbon-based fluorescent nanoparticles with valuable properties such as high aqueous solubility, low cost and good biocompatibility, with remarkable fluorescence performance, been increasingly used as fluorescent nanosensors. Namely, these nanomaterials present advantages over molecular probes in terms of (photo)stability and water solubility, among others. By employing ASP strategies, the CDs will be prepared by using precursors with known active functional features. The ASP method allows the nanoparticles to retain the structural features of precursors, thus retaining their properties, without the need for costly and time-consuming post-synthesis functionalization procedures. In this work, we intend to provide a proof-of-concept of this type of strategy by utilizing the known pH-sensitivity of fluorescein to provide a pH-based response to CDs. The resulting CDs presented reversible response by fluorescence enhancement in the range of pH from 4 to 12. The nanoparticles exhibited excellent photostability, in different pH solutions. The studied CDs were also unaffected by, either variation of ionic strength or the presence of interferent species, while being compatible with human cancer cells. Finally, CDs were able to determine the pH of real samples. Thus, a selective pH fluorescent CDs-based nanosensor was developed.
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基于主动表面保存策略的碳点荧光pH纳米传感器
在环境、工业和生物医学领域,pH监测是最重要的。然而,最常用的pH传感器类型,玻璃pH电极,由于其尺寸和侵入性,在小体积样品和细胞pH传感中的应用仍然存在局限性。基于荧光的传感器为这些问题提供了解决方案,为pH值传感提供了非侵入性解决方案。在此,我们报告了通过活性表面保存(ASP)方法,碳点(CDs)作为pH纳米传感器的合理发展。碳点(cd)是一种具有高水溶性、低成本和良好生物相容性的碳基荧光纳米颗粒,具有显著的荧光性能,越来越多地被用作荧光纳米传感器。也就是说,这些纳米材料在(光)稳定性和水溶性等方面比分子探针具有优势。通过采用ASP策略,cd将使用具有已知活性功能特征的前体来制备。ASP方法允许纳米颗粒保留前体的结构特征,从而保留其性能,而不需要昂贵且耗时的合成后功能化程序。在这项工作中,我们打算通过利用荧光素已知的ph敏感性来提供基于ph的CDs响应,从而提供这种类型策略的概念验证。所得CDs在pH为4 ~ 12的范围内呈现可逆的荧光增强反应。纳米粒子在不同的pH溶液中表现出优异的光稳定性。所研究的CDs也不受离子强度变化或干扰物种存在的影响,同时与人类癌细胞兼容。最后,CDs能够测定实际样品的pH值。因此,开发了一种选择性pH荧光cds纳米传感器。
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