TY - JOUR
T1 - Dual-Channel electrochemiluminescence mechanism and bioanalysis of semiconductor solar cell material Cu2ZnSnS4
AU - Liu, Yan
AU - Han, Xue
AU - Huang, Guiqun
AU - Deng, Mingzhu
AU - Zhong, Mingyu
AU - Li, Mengli
AU - Zhang, Yuqi
AU - Zhang, Jia
AU - Zhang, Yijia
AU - Li, Xiangkai
AU - Gan, Shutian
AU - Wang, Yang
AU - Xu, Zheng
AU - Mi, Li
AU - Hu, Yonghong
AU - Yang, Meng
AU - Wang, Yinzhu
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/8/15
Y1 - 2025/8/15
N2 - This study involved the synthesis of Cu2ZnSnS4 (CZTS) via a high-temperature liquid-phase strategy, followed by a comprehensive characterization of its structural and optical properties using a range of analytical techniques. The electrochemiluminescence (ECL) phenomenon of CZTS has been discovered for the first time. Moreover, the use of tripropylamine (TPrA) and persulfate (S2O82−) as co-reactants resulted in CZTS exhibiting highly efficient ECL emission at both positive and negative potentials. The sulfur vacancies in CZTS functioned as electron traps, which enhanced the adsorption and binding affinity of co-reactant radicals. This promoted the interaction between the co-reactant and the ECL emitter, reduced energy loss, and significantly improved the ECL performance of the dual co-reactant system. In light of these findings, a new ECL biosensor was developed, incorporating DNA walker technology, an FTO three-electrode system, and enzyme-free cleavage, facilitating the efficient detection of the biomarker microRNA-141 (miRNA-141). The biosensing mechanism employed a “on-off-enhance on” signal conversion strategy, showcasing remarkable detection performance for miRNAs across a concentration range of 10−16 to 10−10 M, with a detection limit (LOD) reaching as low as 10−16 M. This study broads the potential applications of traditional semiconductor solar cell material CZTS within the field of ECL, offering a theoretical foundation for advancing ECL research and underscoring its applicability in biomedical research and clinical diagnosis.
AB - This study involved the synthesis of Cu2ZnSnS4 (CZTS) via a high-temperature liquid-phase strategy, followed by a comprehensive characterization of its structural and optical properties using a range of analytical techniques. The electrochemiluminescence (ECL) phenomenon of CZTS has been discovered for the first time. Moreover, the use of tripropylamine (TPrA) and persulfate (S2O82−) as co-reactants resulted in CZTS exhibiting highly efficient ECL emission at both positive and negative potentials. The sulfur vacancies in CZTS functioned as electron traps, which enhanced the adsorption and binding affinity of co-reactant radicals. This promoted the interaction between the co-reactant and the ECL emitter, reduced energy loss, and significantly improved the ECL performance of the dual co-reactant system. In light of these findings, a new ECL biosensor was developed, incorporating DNA walker technology, an FTO three-electrode system, and enzyme-free cleavage, facilitating the efficient detection of the biomarker microRNA-141 (miRNA-141). The biosensing mechanism employed a “on-off-enhance on” signal conversion strategy, showcasing remarkable detection performance for miRNAs across a concentration range of 10−16 to 10−10 M, with a detection limit (LOD) reaching as low as 10−16 M. This study broads the potential applications of traditional semiconductor solar cell material CZTS within the field of ECL, offering a theoretical foundation for advancing ECL research and underscoring its applicability in biomedical research and clinical diagnosis.
KW - Biosensing analysis
KW - CuZnSnS
KW - ECL efficiency
KW - Electrochemiluminescence
UR - http://www.scopus.com/inward/record.url?scp=105005211859&partnerID=8YFLogxK
U2 - 10.1016/j.jelechem.2025.119207
DO - 10.1016/j.jelechem.2025.119207
M3 - 文章
AN - SCOPUS:105005211859
SN - 1572-6657
VL - 991
JO - Journal of Electroanalytical Chemistry
JF - Journal of Electroanalytical Chemistry
M1 - 119207
ER -