Jiangsu Key Laboratory of Biofunctional Materials, College of Chemistry and Materials Science, Nanjing Normal University , Nanjing 210023, P. R. China.
Anal Chem. 2013 Dec 17;85(24):11720-4. doi: 10.1021/ac403408y. Epub 2013 Nov 27.
On the basis of the absorption and emission spectra overlap, an enhanced resonance energy transfer caused by excition-plasmon resonance between reduced graphene oxide (RGO)-Au nanoparticles (AuNPs) and CdTe quantum dots (QDs) was obtained. With the synergy of AuNPs and RGO as a planelike energy acceptor, it resulted in the enhancement of energy transfer between excited CdTe QDs and RGO-AuNPs nanocomposites. Upon the novel sandwichlike structure formed via DNA hybridization, the exciton produced in CdTe QDs was annihilated. A damped photocurrent was obtained, which was acted as the background signal for the development of a universal photoelectrochemical (PEC) platform. With the use of carcinoembryonic antigen (CEA) as a model which bonded to its specific aptamer and destroyed the sandwichlike structure, the energy transfer efficiency was lowered, leading to PEC response augment. Thus a signal-on PEC aptasensor was constructed. Under 470 nm irradiation at -0.05 V, the PEC aptasensor for CEA determination exhibited a linear range from 0.001 to 2.0 ng mL(-1) with a detection limit of 0.47 pg mL(-1) at a signal-to-noise ratio of 3 and was satisfactory for clinical sample detection. Since different aptamers can specifically bind to different target molecules, the designed strategy has an expansive application for the construction of versatile PEC platforms.
基于吸收和发射光谱的重叠,通过还原氧化石墨烯(RGO)-Au 纳米粒子(AuNPs)和碲化镉量子点(CdTe QDs)之间的激子-等离子体共振,获得了增强的共振能量转移。由于 AuNPs 和 RGO 作为平面状能量受体的协同作用,导致激发的 CdTe QDs 和 RGO-AuNPs 纳米复合材料之间的能量转移增强。通过 DNA 杂交形成的新型三明治结构,CdTe QDs 中产生的激子被湮灭。获得了衰减的光电流,它被用作开发通用光电化学(PEC)平台的背景信号。利用癌胚抗原(CEA)作为与其特异性适配体结合并破坏三明治结构的模型,降低了能量转移效率,导致 PEC 响应增强。因此,构建了一种信号开启的 PEC 适体传感器。在-0.05 V 的 470 nm 照射下,用于 CEA 测定的 PEC 适体传感器在 0.001 至 2.0 ng mL(-1)的线性范围内表现出线性范围,检测限为 0.47 pg mL(-1),信噪比为 3,可满足临床样品检测的要求。由于不同的适体可以特异性地与不同的靶分子结合,因此所设计的策略具有广泛的用于构建通用 PEC 平台的应用。