State Key Laboratory of Clean Energy, Department of Energy Engineering, Zhejiang University, Hangzhou, 310027, PR China.
State Key Laboratory of Clean Energy, Department of Energy Engineering, Zhejiang University, Hangzhou, 310027, PR China.
Environ Res. 2024 Dec 15;263(Pt 2):120093. doi: 10.1016/j.envres.2024.120093. Epub 2024 Oct 4.
Electrochemically active biofilms (EABs) for nitrite detection have high specificity, rapid response, operational simplicity, and extended lifespan advantages. However, their scale production remains challenging due to time-consuming and uniform preparation. In this study, a novel approach was proposed to fast fabricate an EAB biosensor with a synthetic biofilm electrode for nitrite detection. The biofilm electrode was prepared by coating bioinks with varying conductive materials onto the surface of the graphite sheets, showing short incubation time and good reproducibility. Incorporating conductive materials into the bioinks remarkably enhanced the maximum voltage of the first cycle of bioelectrode incubation, with an increase of up to 633% for carbon nanofibers. The nitrite reduction current was amplified by a factor of 2.97, due to the enhancement of extracellular electron transfer (EET). The developed nitrite biosensor exhibited a detection range of 0.1-15 mg NO-N L, with a high sensitivity of 610.8 μA mM cm, and a stabilization operation time of at least 280 cycles. This study not only provided valuable insights into conductive materials for synthetic biofilms but also presented a practical approach for the rapid preparation, scale production, and optimization of highly sensitive and stable EAB sensors.
用于亚硝酸盐检测的电化学活性生物膜 (EAB) 具有高特异性、快速响应、操作简单和延长使用寿命等优点。然而,由于制备过程耗时且均匀,其大规模生产仍然具有挑战性。在这项研究中,提出了一种新方法,用于快速制备用于亚硝酸盐检测的具有合成生物膜电极的 EAB 生物传感器。生物膜电极是通过将具有不同导电材料的生物墨水涂覆在石墨片表面上制备的,具有短的孵育时间和良好的重现性。将导电材料掺入生物墨水中可显著提高生物电极孵育第一周期的最大电压,对于碳纤维纳米纤维,最大电压增加高达 633%。由于细胞外电子转移 (EET) 的增强,亚硝酸盐还原电流被放大了 2.97 倍。所开发的亚硝酸盐生物传感器的检测范围为 0.1-15mgNO-N L,具有 610.8μA mM cm 的高灵敏度和至少 280 个循环的稳定操作时间。这项研究不仅为合成生物膜的导电材料提供了有价值的见解,而且还为快速制备、大规模生产和优化高灵敏度和稳定的 EAB 传感器提供了一种实用方法。