College of Biological Engineering, Sichuan University of Science and Engineering, 188 University Town, Yibin, China.
Chongqing Univ, Bioengn Coll, State & Local Joint Engn Lab Vasc Implants, Minist Educ, Key Lab Biorheol Sci & Technol, Chongqing, China.
Anal Methods. 2023 May 25;15(20):2417-2426. doi: 10.1039/d2ay01977a.
In this work, we propose a bimetallic Ni-Co based MOF attached to graphene oxide (GO) by a one-step hydrothermal approach which may be employed as an electrochemical enzyme-free glucose sensor. Due to the obvious synergistic catalysis of Ni and Co, as well as the combination of NiCo-MOF and GO, NiCo-MOF/GO not only enhances energy transfer and electrocatalytic performance but also provides a larger surface area and more active sites. Electrochemical studies show that NiCo-MOF/GO exhibits outstanding electrochemical activity, with a sensitivity of 11 177 μA mM cm and 4492 μA mM cm in the linear ranges of 1-497 μM and 597-3997 μM, a detection limit of 0.23 μM, and a response time of 2 seconds. More importantly, the newly fabricated sensor is successfully applied for glucose determination in huangshui. This method provides a novel strategy for the controlled fermentation process and product quality of Chinese baijiu.
在这项工作中,我们通过一步水热法提出了一种负载在氧化石墨烯(GO)上的双金属 Ni-Co 基 MOF,可作为电化学无酶葡萄糖传感器。由于 Ni 和 Co 的明显协同催化作用,以及 NiCo-MOF 和 GO 的结合,NiCo-MOF/GO 不仅增强了能量传递和电催化性能,而且提供了更大的表面积和更多的活性位点。电化学研究表明,NiCo-MOF/GO 表现出优异的电化学活性,在 1-497 μM 和 597-3997 μM 的线性范围内,灵敏度分别为 11177 μA mM cm 和 4492 μA mM cm,检测限为 0.23 μM,响应时间为 2 秒。更重要的是,新制备的传感器成功应用于黄水的葡萄糖测定。该方法为中国白酒的可控发酵过程和产品质量提供了一种新策略。