Key Laboratory for Large-Format Battery Materials and System (Ministry of Education), School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology , Luoyu Road 1037, Wuhan 430074, P. R. China.
ACS Appl Mater Interfaces. 2016 Oct 26;8(42):28255-28264. doi: 10.1021/acsami.5b08275. Epub 2015 Nov 17.
Graphitic carbon nitride (g-CN) is a new type of metal-free semiconducting material with promising applications in photocatalytic and photoelectrochemical (PEC) devices. In the present work, g-CN coupled with CdS quantum dots (QDs) was synthesized and served as highly efficient photoactive species in a PEC sensor. The surface morphological analysis showed that CdS QDs with a size of ca. 4 nm were grafted on the surface of g-CN with closely contacted interfaces. The UV-visible diffuse reflection spectra (DRS) indicated that the absorption of g-CN in the visible region was enhanced by CdS QDs. As a result, g-CN-CdS nanocomposites demonstrated higher PEC activity as compared with either pristine g-CN or CdS QDs. When g-CN-CdS nanocomposites were utilized as transducer and tetracycline (TET)-binding aptamer was immobilized as biorecognition element, a visible light-driven PEC aptasensing platform for TET determination was readily fabricated. The sensor showed a linear PEC response to TET in the concentration range from 10 to 250 nM with a detection limit (3S/N) of 5.3 nM. Thus, g-CN sensitized with CdS QDs was successfully demonstrated as useful photoactive nanomaterials for developing a highly sensitive and selective PEC aptasensor.
石墨相氮化碳(g-CN)是一种新型的无金属半导体材料,在光催化和光电化学(PEC)器件中有很好的应用前景。在本工作中,合成了 g-CN 与 CdS 量子点(QDs)的复合物,并将其作为高效的光活性物质应用于 PEC 传感器中。表面形貌分析表明,CdS QDs 的尺寸约为 4nm,紧密地接枝在 g-CN 的表面上,具有紧密接触的界面。紫外可见漫反射光谱(DRS)表明,CdS QDs 增强了 g-CN 在可见光区的吸收。因此,与原始的 g-CN 或 CdS QDs 相比,g-CN-CdS 纳米复合材料表现出更高的 PEC 活性。当 g-CN-CdS 纳米复合材料被用作传感器,而四环素(TET)结合适体被固定为生物识别元件时,一个用于 TET 测定的可见光驱动的 PEC 适体传感器平台就很容易构建起来。该传感器对 TET 的 PEC 响应在 10 到 250 nM 的浓度范围内呈线性,检测限(3S/N)为 5.3 nM。因此,CdS QDs 敏化的 g-CN 被成功地证明是一种用于开发高灵敏度和选择性 PEC 适体传感器的有用的光活性纳米材料。