Quantum Dot/TiO2 Nanocomposite‐Based Photoelectrochemical Sensor for Enhanced H2O2 Detection Applied for Cell Monitoring and Visualization

Author:

Zhao Shuang12,Yue Zhao3,Zhu Dingcheng14,Harberts Jann156,Blick Robert H.1,Zierold Robert1,Lisdat Fred7,Parak Wolfgang J.1ORCID

Affiliation:

1. Fachbereich Physik CHyN Universität Hamburg Hamburg 22761 Germany

2. Key Laboratory for Special Fiber and Fiber Sensor of Hebei Province School of Information Science and Engineering Yanshan University Qinhuangdao 066004 China

3. Department of Microelectronics Nankai University Tianjin 30071 China

4. College of Material Chemistry and Chemical Engineering Key Laboratory of Organosilicon Chemistry and Material Technology Ministry of Education Hangzhou Normal University Hangzhou 311121 China

5. Monash Institute of Pharmaceutical Sciences Monash University 381 Royal Parade Parkville 3052 VIC Australia

6. Melbourne Centre for Nanofabrication Victorian Node of the Australian National Fabrication Facility 151 Wellington Road Clayton 3168 VIC Australia

7. Biosystems Technology Institute of Life Sciences and Biomedical Technologies Technical University of Applied Sciences Wildau Wildau 15745 Germany

Abstract

AbstractThis work exploits the possibility of using CdSe/ZnS quantum dot (QD)‐electrodes to monitor the metabolism of living cells based on photoelectrochemical (PEC) measurements. To realize that, the PEC setup is improved with respect to an enhanced photocurrent signal, better stability, and an increased signal‐to‐noise ratio, but also for a better biocompatibility of the sensor surface on which cells have been grown. To achieve this, a QD‐TiO2 heterojunction is introduced with the help of atomic layer deposition (ALD). The heterojunction reduces the charge carrier recombination inside the semiconductor nanoparticles and improves the drift behavior. The PEC performance is carefully analyzed by adjusting the TiO2 thickness and combining this strategy with multilayer immobilizations of QDs. The optimal thickness of this coating is ≈5 nm; here, photocurrent generation can be enhanced significantly (e.g., for a single QD layer electrode by more than one order of magnitude at 0 V vs Ag/AgCl). The resulting optimized electrode is used for hydrogen peroxide (H2O2) sensing with a good sensitivity down to µmolar concentrations, reusability, stability, response rate, and repeatability. Finally, the sensing system is applied to monitor the activity of cells directly grown on top of the electrode surface.

Funder

China Scholarship Council

Deutsche Forschungsgemeinschaft

National Natural Science Foundation of China

Publisher

Wiley

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