TY - JOUR
T1 - Cu/Cu2O/CuO catalyst generated by disproportionation for electrochemical dopamine sensing with improved stability and sensitivity
AU - Lu, Chengyi
AU - Ma, Yiyue
AU - Zhu, Wenxin
AU - Cao, Yong
AU - Cao, Yonghui
AU - Huang, Qiaogao
AU - Wang, Xuefei
AU - Wang, Jianlong
N1 - Publisher Copyright:
© 2023 Elsevier B.V.
PY - 2023/10
Y1 - 2023/10
N2 - Electrochemical sensing has been widely used for monitoring the signals of biochemical molecules closely related to human health while there are strict requirements for the stability of electrode materials in detection. Cu2O, as one of the ideal transition-metal oxides with low cost and exceptional physicochemical properties, has attracted much attention because of its satisfactory electrochemical activity, proper redox potentials and so on. However, the unsatisfactory conductivity and the limited stability of Cu2O in aqueous solutions impact greatly on its application in electrochemical sensing. Herein, we prepared a monolithic Cu/Cu2O/CuO film via electrochemical deposition followed by a mild disproportionation reaction. A Cu2O/CuO layer is firstly formed after the electrodeposition process, then the disproportionation reaction of Cu2O/CuO layer is induced by acidulated NaF solution, which not only leads to the increase of the content of protective CuO and the introduction of micronano metallic Cu with good conductivity, but also results in the moderate exposure of Cu2O (1 1 1) with higher stability and acceptable catalytic activity. Through microstructure engineering, specific facet exposure and the chemical composition regulation, we obtained a Cu/Cu2O/CuO film with higher surface area and enhanced conductivity, achieving enhanced sensitivity (880 μA mM−1 cm−2), fast response (<0.4 s), low detection limit (96 nM) and superior stability, which is greatly beneficial for acquiring better catalytic activity and stable sensing performance towards dopamine (DA). This work provides a facile and low-cost way for the design of stable electrocatalysts based on Cu2O in a perspective of facet exposure and phase transformation.
AB - Electrochemical sensing has been widely used for monitoring the signals of biochemical molecules closely related to human health while there are strict requirements for the stability of electrode materials in detection. Cu2O, as one of the ideal transition-metal oxides with low cost and exceptional physicochemical properties, has attracted much attention because of its satisfactory electrochemical activity, proper redox potentials and so on. However, the unsatisfactory conductivity and the limited stability of Cu2O in aqueous solutions impact greatly on its application in electrochemical sensing. Herein, we prepared a monolithic Cu/Cu2O/CuO film via electrochemical deposition followed by a mild disproportionation reaction. A Cu2O/CuO layer is firstly formed after the electrodeposition process, then the disproportionation reaction of Cu2O/CuO layer is induced by acidulated NaF solution, which not only leads to the increase of the content of protective CuO and the introduction of micronano metallic Cu with good conductivity, but also results in the moderate exposure of Cu2O (1 1 1) with higher stability and acceptable catalytic activity. Through microstructure engineering, specific facet exposure and the chemical composition regulation, we obtained a Cu/Cu2O/CuO film with higher surface area and enhanced conductivity, achieving enhanced sensitivity (880 μA mM−1 cm−2), fast response (<0.4 s), low detection limit (96 nM) and superior stability, which is greatly beneficial for acquiring better catalytic activity and stable sensing performance towards dopamine (DA). This work provides a facile and low-cost way for the design of stable electrocatalysts based on Cu2O in a perspective of facet exposure and phase transformation.
KW - Disproportionation
KW - Dopamine
KW - Electrochemical sensing
KW - Facet exposure
KW - Phase transformation
KW - Stable detection
UR - http://www.scopus.com/inward/record.url?scp=85161988529&partnerID=8YFLogxK
U2 - 10.1016/j.microc.2023.108966
DO - 10.1016/j.microc.2023.108966
M3 - 文章
AN - SCOPUS:85161988529
SN - 0026-265X
VL - 193
JO - Microchemical Journal
JF - Microchemical Journal
M1 - 108966
ER -