Oakland International Associated Laboratory, School of Photoelectric Engineering, Changzhou Institute of Technology, Changzhou, Jiangsu, 213032, People's Republic of China.
School of Electrical and Information Engineering, Jiangsu University, Zhenjiang, 212013, Jiangsu, China.
Anal Bioanal Chem. 2021 Sep;413(21):5373-5382. doi: 10.1007/s00216-021-03513-2. Epub 2021 Jul 15.
Low-cost and resource-rich non-noble metal plasmonic materials have attracted tremendous attention as potential substitutes for plasmonic noble metals. Herein, 3D nitrogen-doped graphene hydrogels (NGH) decorated with Ti self-doped 1D rod-shaped titanium dioxide nanorods (TiO NR), 10-25 nm in size, were prepared by a facile one-step method. It was found that the as-fabricated TiO NR/NGH showed a synergistic effect, displaying enhanced photoelectrochemical (PEC) activity by controlling the nanoscale architecture and improving the electronic properties, while also producing abundant oxygen vacancies, which extended the light harvesting and suppressed the recombination of electron-hole pairs induced by the non-noble metal surface plasmon resonance (SPR) effect. In particular, the transient-state photocurrent intensity of the TiO NR/NGH composites was 5.1 times as high as that of pure TiO. Therefore, the TiO NR/NGH composites could serve as a substrate material for PEC sensing, providing a good basis for selective and sensitive detection of chlorpyrifos. Under optimal conditions, the constructed PEC sensor was found to have several advantages including a broad linear range (0.05 ng/mL-0.5 μg/mL), low detection limit (0.017 ng/mL), and considerable stability, demonstrating that the sensor may offer a promising route in the field of environmental analysis.
低成本且资源丰富的非贵金属等离子体材料作为等离子体贵金属的潜在替代品引起了极大的关注。在此,通过简便的一步法制备了具有 10-25nm 尺寸的 Ti 自掺杂一维棒状二氧化钛纳米棒(TiO NR)的三维氮掺杂石墨烯水凝胶(NGH)。结果发现,所制备的 TiO NR/NGH 表现出协同效应,通过控制纳米结构和改善电子性能,同时产生丰富的氧空位,从而扩展了光捕获并抑制了由非贵金属表面等离子体共振(SPR)效应引起的电子空穴对的复合。特别是,TiO NR/NGH 复合材料的瞬态光电流强度是纯 TiO 的 5.1 倍。因此,TiO NR/NGH 复合材料可用作 PEC 传感的基底材料,为毒死蜱的选择性和灵敏检测提供了良好的基础。在最佳条件下,所构建的 PEC 传感器具有较宽的线性范围(0.05ng/mL-0.5μg/mL)、较低的检测限(0.017ng/mL)和相当的稳定性,表明该传感器可能在环境分析领域提供一种很有前途的途径。