Tianjin Key Laboratory of Film Electronic and Communication Devices, Engineering Research Center of Optoelectronic Devices & Communication Technology (Ministry of Education), School of Integrated Circuit Science and Engineering, Tianjin University of Technology, Tianjin, 300384, PR China.
Tianjin Key Laboratory of Film Electronic and Communication Devices, Engineering Research Center of Optoelectronic Devices & Communication Technology (Ministry of Education), School of Integrated Circuit Science and Engineering, Tianjin University of Technology, Tianjin, 300384, PR China.
Anal Chim Acta. 2022 Apr 15;1202:339689. doi: 10.1016/j.aca.2022.339689. Epub 2022 Mar 7.
Molecularly imprinted polymer (MIP) membranes prepared in situ present several advantages: they maintain the original morphology, adhere strongly to the collector, and exhibit a controllable structure. In this study, a Ni-polyacrylamide (PAM)-MIP matrix was fabricated in situ on glassy carbon via the one-step electro-polymerization of AM monomers in the presence of Ni and template molecules. Ni ions were introduced as oxidants to promote AM polymerization and bulking agents to fabricate a three-dimensional porous PAM-MIP matrix. The Ni-PAM-based MIP sensor exhibited a quantitative dual response toward dopamine (DA) and adenine (Ade) in the pH range of 5.0-9.0. The linear concentration range changed depending on the pH environment, and the concentrations of DA and Ade ranged from 0.6 to 200 μM and from 0.4 to 300 μM, respectively. The ranges of detection limits (S/N = 3) were 0.12-0.37 μM for DA and 0.15-0.36 μM for Ade. In addition, the dual-MIP sensor exhibited high reliability in the detection of DA and Ade in human serum owing to its excellent anti-interference ability and long-term stability. The technique developed in this study is expected to facilitate the construction of multi-target response electrochemical biosensors and the reliable determination of small molecules with high selectivity and stability.
分子印迹聚合物(MIP)原位制备的膜具有以下几个优点:它们保持了原始形态,与收集器紧密结合,并具有可控制的结构。在这项研究中,通过在 AM 单体存在下在玻璃碳上一步电聚合制备了原位 Ni-聚丙烯酰胺(PAM)-MIP 基质,其中 Ni 和模板分子。Ni 离子被引入作为氧化剂以促进 AM 聚合和作为致孔剂来制备三维多孔 PAM-MIP 基质。基于 Ni-PAM 的 MIP 传感器在 pH 值为 5.0-9.0 的范围内对多巴胺(DA)和腺嘌呤(Ade)表现出定量的双重响应。线性浓度范围取决于 pH 环境,DA 和 Ade 的浓度范围分别为 0.6-200 μM 和 0.4-300 μM。检测限(S/N = 3)的范围为 0.12-0.37 μM 用于 DA 和 0.15-0.36 μM 用于 Ade。此外,由于其出色的抗干扰能力和长期稳定性,双-MIP 传感器在人血清中 DA 和 Ade 的检测中表现出很高的可靠性。本研究中开发的技术有望促进多目标响应电化学生物传感器的构建以及具有高选择性和稳定性的小分子的可靠测定。