TY - JOUR
T1 - Dual-Mode Sensor Based on a Single-Atom Cobalt Catalyst for Simultaneous Electrochemical and Colorimetric Detection of Bioactive Small Molecules
AU - Jin, Jin
AU - Wei, Jing Jing
AU - Gu, Zhi Yang
AU - Zhang, Yong Xin
AU - Lu, Zhuang Yi
AU - Zhang, Qi Wei
AU - Wan, Jing Jing
AU - Shi, Guo Yue
AU - Xia, Xing Hua
AU - Shi, Yi
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/4/22
Y1 - 2025/4/22
N2 - The design of single-atom catalysts with dual functions has emerged as a promising strategy for developing high-performance sensing platforms. Herein, we reported a facile host-guest strategy for synthesizing an atomically dispersed Co catalyst (Co-N-C), where Co atoms were uniformly anchored on the N-doped carbon matrix derived from zeolitic imidazolate framework-8. The as-prepared Co-N-C exhibits both excellent electrochemical sensing and peroxidase-like colorimetric activities toward the detection of three important bioactive small molecules, ascorbic acid (AA), dopamine (DA), and uric acid (UA). The electrochemical sensor demonstrated ultrahigh sensitivity with detection limits of 4.83, 1.36, and 0.371 μM for AA, DA, and UA, respectively, along with outstanding selectivity against common interferents and stable performance. Meanwhile, the colorimetric method also showed analytical performance with detection limits of 2.24 μM (AA), 3.09 μM (DA), and 2.97 μM (UA). The results indicate that the electronic modulation of Co through precise nitrogen coordination enhances the affinity of Co-Nx for target reactants, thereby promoting adsorption and electron transfer throughout the reaction. This improves catalytic efficiency and selectivity, establishing Co-N-C with dual-catalytic functionality as a promising material for biosensing applications.
AB - The design of single-atom catalysts with dual functions has emerged as a promising strategy for developing high-performance sensing platforms. Herein, we reported a facile host-guest strategy for synthesizing an atomically dispersed Co catalyst (Co-N-C), where Co atoms were uniformly anchored on the N-doped carbon matrix derived from zeolitic imidazolate framework-8. The as-prepared Co-N-C exhibits both excellent electrochemical sensing and peroxidase-like colorimetric activities toward the detection of three important bioactive small molecules, ascorbic acid (AA), dopamine (DA), and uric acid (UA). The electrochemical sensor demonstrated ultrahigh sensitivity with detection limits of 4.83, 1.36, and 0.371 μM for AA, DA, and UA, respectively, along with outstanding selectivity against common interferents and stable performance. Meanwhile, the colorimetric method also showed analytical performance with detection limits of 2.24 μM (AA), 3.09 μM (DA), and 2.97 μM (UA). The results indicate that the electronic modulation of Co through precise nitrogen coordination enhances the affinity of Co-Nx for target reactants, thereby promoting adsorption and electron transfer throughout the reaction. This improves catalytic efficiency and selectivity, establishing Co-N-C with dual-catalytic functionality as a promising material for biosensing applications.
UR - https://www.scopus.com/pages/publications/105003386462
U2 - 10.1021/acs.analchem.5c01216
DO - 10.1021/acs.analchem.5c01216
M3 - 文章
AN - SCOPUS:105003386462
SN - 0003-2700
VL - 97
SP - 8617
EP - 8624
JO - Analytical Chemistry
JF - Analytical Chemistry
IS - 15
ER -