Hubei Province Key Laboratory for Coal Conversion and New Carbon Materials, School of Chemistry and Chemical Engineering, Wuhan University of Science and Technology, Wuhan 430081, P. R. China.
Department of Chemistry, College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, P. R. China.
ACS Appl Mater Interfaces. 2020 May 13;12(19):22002-22011. doi: 10.1021/acsami.0c02500. Epub 2020 May 4.
Owing to their unique superiorities in chemical and photoluminescence (PL) stability, low toxicity, biocompatibility, and easy functionalization, graphene quantum dots (GQDs) are widely used in cell imaging, probes, and sensors. However, further development and deeper research of GQDs are restricted by their imprecise and complex structure and accompanying controversial PL mechanism. In this work, two kinds of structure-defined water-soluble GQDs, with different oxidation degrees, are synthesized from molecules using bottom-up syntheses methods. After being studied by a series of characterizations, their optical properties, functional groups, molecular weight, and structural information were obtained. The optical properties of GQDs could be optimized by controlling their oxidation degree. The PL mechanism of GQDs was investigated by comparing their structure and properties. Furthermore, robust, stable, and precise temperature probes were designed using the GQDs, which exhibited an excellent wide response range, covering the whole physiology temperature range, from 0 to 60 °C in water. Moreover, the GQDs were successfully applied as temperature-responsive fluorescence probes in the HeLa cell line. These works laid a solid foundation for further applications of GQDs as biological thermoprobes and selectively temperature detectors in vitro cellular and in vivo.
由于其在化学和光致发光(PL)稳定性、低毒性、生物相容性和易功能化方面的独特优势,石墨烯量子点(GQDs)被广泛应用于细胞成像、探针和传感器。然而,GQDs 不精确和复杂的结构以及伴随的有争议的 PL 机制限制了它们的进一步发展和更深入的研究。在这项工作中,我们使用自下而上的合成方法,从分子出发合成了两种具有不同氧化程度的结构明确的水溶性 GQDs。通过一系列的表征对其进行研究后,我们得到了它们的光学性质、官能团、分子量和结构信息。通过控制 GQDs 的氧化程度,可以优化其光学性质。通过比较它们的结构和性质,我们研究了 GQDs 的 PL 机制。此外,我们使用 GQDs 设计了稳健、稳定和精确的温度探针,其在水中的响应范围很宽,涵盖了整个生理温度范围,从 0 到 60°C。此外,我们成功地将 GQDs 用作 HeLa 细胞系中的温度响应荧光探针。这些工作为进一步将 GQDs 用作生物热敏探针和体外细胞和体内选择性温度探测器奠定了坚实的基础。