TY - JOUR
T1 - Recent advances in perovskite oxides for non-enzymatic electrochemical sensors
T2 - A review
AU - He, Juan
AU - Xu, Xiaomin
AU - Li, Meisheng
AU - Zhou, Shouyong
AU - Zhou, Wei
N1 - Publisher Copyright:
© 2023
PY - 2023/4/22
Y1 - 2023/4/22
N2 - Non-enzymatic electrochemical sensors with significant advantages of high sensitivity, long-term stability, and excellent reproducibility, are one promising technology to solve many challenges, such as the detection of toxic substances and viruses. Among various materials, perovskite oxides have become a promising candidate for use in non-enzymatic electrochemical sensors because of their low cost, flexible structure, and high intrinsic catalytic activity. A comprehensive overview of the recent advances in perovskite oxides for non-enzymatic electrochemical sensors is provided, which includes the synthesis methods of nanostructured perovskites and the electrocatalytic mechanisms of perovskite catalysts. The better sensing performance of perovskite oxides is mainly due to the lattice O vacancies and superoxide oxygen ions (O22−/O−), which are generated by the transfer of lattice oxygen to adsorbed –OH and have performed excellent properties suitable for electrooxidation of analytes. However, the limited electron transfer kinetics, stability, and selectivity of perovskite oxides alone make perovskite oxides far from ready for scientific development. Therefore, composites of perovskite oxides with other materials like graphitic carbon, metals, metal compounds, conducting organics, and biomolecules are summarized. Furthermore, a brief section describing the future challenges and the corresponding recommendation is presented in this review.
AB - Non-enzymatic electrochemical sensors with significant advantages of high sensitivity, long-term stability, and excellent reproducibility, are one promising technology to solve many challenges, such as the detection of toxic substances and viruses. Among various materials, perovskite oxides have become a promising candidate for use in non-enzymatic electrochemical sensors because of their low cost, flexible structure, and high intrinsic catalytic activity. A comprehensive overview of the recent advances in perovskite oxides for non-enzymatic electrochemical sensors is provided, which includes the synthesis methods of nanostructured perovskites and the electrocatalytic mechanisms of perovskite catalysts. The better sensing performance of perovskite oxides is mainly due to the lattice O vacancies and superoxide oxygen ions (O22−/O−), which are generated by the transfer of lattice oxygen to adsorbed –OH and have performed excellent properties suitable for electrooxidation of analytes. However, the limited electron transfer kinetics, stability, and selectivity of perovskite oxides alone make perovskite oxides far from ready for scientific development. Therefore, composites of perovskite oxides with other materials like graphitic carbon, metals, metal compounds, conducting organics, and biomolecules are summarized. Furthermore, a brief section describing the future challenges and the corresponding recommendation is presented in this review.
KW - Detection methods
KW - Electrocatalytic mechanisms
KW - Flexible structures
KW - Non-enzymatic electrochemical sensors
KW - Perovskite oxides
KW - Perovskites oxide-based composites
UR - http://www.scopus.com/inward/record.url?scp=85149959875&partnerID=8YFLogxK
U2 - 10.1016/j.aca.2023.341007
DO - 10.1016/j.aca.2023.341007
M3 - 文献综述
C2 - 36925293
AN - SCOPUS:85149959875
SN - 0003-2670
VL - 1251
JO - Analytica Chimica Acta
JF - Analytica Chimica Acta
M1 - 341007
ER -