异质结
赫拉
电子转移
电子传输链
光电化学电池
电化学
化学
电子
氧化还原
光电子学
光化学
检出限
材料科学
纳米线
纳米技术
光电化学
生物传感器
激进的
导带
电子受体
分析化学(期刊)
可见光谱
退火(玻璃)
电导率
带隙
电极
作者
Bingjie Li,Zhenhua Ren,Xiujuan Zhang,Xinyao Zhu,Sujie Qin,Xiaoqiang Liu,Danny K.Y. Wong
标识
DOI:10.1016/j.bios.2025.118034
摘要
In this work, we have constructed a Ti3C2 MXene@TiO2/Co2.7Ni0.3O4 Z-type heterojunction with excellent conductivity and efficient electron transport (23 Ω charge transfer resistance, 0.79 electron transfer coefficient, and 0.29 s-1 heterogeneous electron transfer constant, based on the redox marker [Fe(CN)6]4-), which have all contributed to effectively minimising recombination of photogenerated electrons and holes, making it a superior electrode material for developing a photoelectrochemical sensor. Experimentally, low-temperature annealing was exploited to partially oxidise Ti3C2 to TiO2 to establish an intimate contact between them, before being loaded on a Co2.7Ni0.3O4 nanowire array to form a Ti3C2 MXene@TiO2/Co2.7Ni0.3O4 heterojunction. After microscopically and spectroscopically characterising the material, electrochemical studies demonstrated matching conduction band voltage of Co2.7Ni0.3O4 (0.66 eV) and valence band voltage of TiO2 (-0.4 eV) that facilitate electron transport. The results have allowed us to propose a detection mechanism for H2O2 at the photoelectrochemical sensor. The photoelectrochemical sensor was then applied to detecting H2O2 enzymatically converted by superoxide dismutase from superoxide radicals released in mitochondria extracted from cancerous HeLa cells. In this respect, a 0.05-50,000 nM linear range, a 5.93 μA sensitivity, and a 0.03 nM H2O2 limit of detection were accomplished.
科研通智能强力驱动
Strongly Powered by AbleSci AI