4.8 Article

Solar-Driven Photoelectrochemical Probing of Nanodot/Nanowire/Cell Interface

Journal

NANO LETTERS
Volume 14, Issue 5, Pages 2702-2708

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nl500608w

Keywords

photoelectrochemical; nanowire; carbon nanodot; nitrogen-doping; H2S

Funding

  1. National Key Basic Research Program of China [2013CB934104, 2012CB921400, 0102011DFA02830]
  2. Natural Science Foundation of China [21322311, 21071033, 20890123]
  3. Program for New Century Excellent Talents in University [NCET-10-0357]
  4. Ministry of Education of China
  5. Program for Professor of Special Appointment (Eastern Scholar) at Shanghai institutions of Higher Learning
  6. Deanship of Scientific Research-King Saud University - The International Highly Cited Research Group program (IHCRG) [14-102]
  7. NSF of China [91027044]
  8. Ministry of Education
  9. Fudan University
  10. Deng-Hui Undergraduate Research Funding of Fudan University

Ask authors/readers for more resources

We report a nitrogen-doped carbon nanodot (N-Cdot)/TiO2 nanowire photoanode for solar-driven, real-time, and sensitive photoelectrochemical probing of the cellular generation of H2S, an important endogenous gasotransmitter based on a tunable interfacial charge carrier transfer mechanism. Synthesized by a microwave-assisted solvothermal method and subsequent surface chemical conjugation, the obtained N-Cdot/TiO2 nanowire photoanode shows much. enhanced photoelectrochemical photocurrent compared with pristine TiO2 nanowires. This photocurrent increase is attributed to the injection of photogenerated electrons from N-Cdots to TiO2 nanowires, confirmed by density functional theory simulation. In addition, the charge transfer efficiency is quenched by Cu2+, whereas the introduction of H2S or S2- ions resets the charge transfer and subsequently the photocurrent, thus leading to sensitive photoelectrochemical recording of the H2S level in buffer and cellular environments. Moreover, this N-Cdot-TiO2 nanowire photoanode has been demonstrated for direct growth and interfacing of H9c2 cardiac myoblasts, with the capability of interrogating H2S cellular generation pathways by vascular endothelial growth factor stimulation as well as inhibition.

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