Issue 15, 2016

Graphitic carbon nitride as a photovoltaic booster in quantum dot sensitized solar cells: a synergistic approach for enhanced charge separation and injection

Abstract

A ∼70% improvement in power conversion efficiency (PCE, η) is observed for the devices fabricated with a binary hybrid composite of graphitic carbon nitride and zinc oxide nanorods, i.e., (g-C3N4–ZnO NR) [η ≈ 2.43%, for an optimized weight ratio (0.5 : 1)] as compared to the pristine ZnO NR device (η ≈ 0.65%). Systematic investigations reveal that g-C3N4 boosts the light harvesting ability of the photovoltaic devices primarily by impeding photo-induced electron interception to the redox couple and injecting electrons into the conduction band of the semiconductor. Electrochemical impedance spectroscopy (EIS) analysis shows a reduced tunneling of photo-induced electrons to the sulfide–polysulfide (S2−/Sn2−) redox shuttle in the case of (g-C3N4–ZnO NR) composite devices. Higher recombination resistance (Rk) indicates that the g-C3N4 sheet acts as a barrier for photo-induced electron interception at the working electrode/electrolyte interface. Preliminary investigation using steady state and dynamic photoluminescence analyses suggest a similar fact about the photo-induced electron injection from g-C3N4 sheets to ZnO, contributing to the enhanced light harvesting ability of (g-C3N4–ZnO NR) composite devices.

Graphical abstract: Graphitic carbon nitride as a photovoltaic booster in quantum dot sensitized solar cells: a synergistic approach for enhanced charge separation and injection

Supplementary files

Article information

Article type
Paper
Submitted
26 Jan 2016
Accepted
04 Mar 2016
First published
07 Mar 2016

J. Mater. Chem. A, 2016,4, 5528-5541

Graphitic carbon nitride as a photovoltaic booster in quantum dot sensitized solar cells: a synergistic approach for enhanced charge separation and injection

T. R. Chetia, M. S. Ansari and M. Qureshi, J. Mater. Chem. A, 2016, 4, 5528 DOI: 10.1039/C6TA00761A

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