4.8 Article

Quaternary Cu2ZnSnS4 quantum dot-sensitized solar cells: Synthesis, passivation and ligand exchange

Journal

JOURNAL OF POWER SOURCES
Volume 318, Issue -, Pages 35-40

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jpowsour.2016.04.009

Keywords

Cu2ZnSnS4; Cation exchange; Core-shell; Quantum dot-sensitized solar cells; Charge transport

Funding

  1. National Natural Science Foundation of China [21203053, 21271064, 61306016]
  2. NSFC-HN [U1204214]
  3. Program for Changjiang Scholars and Innovative Research Team in University of Henan University [PCS IRT1126]

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The quaternary Cu2ZnSnS4 (CZTS) QDs had been successfully introduced into quantum dot-sensitized solar cells (QDSC) via hydrolysis approach in our previous work [Green Chem. 2015, vol. 17, p. 4377], but the obtained cell efficiency was still limited by low open-circuit voltage and fill factor. Herein, we use 1-dodecanethiol (DDT) as capping ligand for fairly small-sized CZTS QDs synthesis to improve their intrinsic properties. Since this strong bonded capping ligand can not be replaced by 3-mercaptopropionic acid (MPA) directly, the nature cation (Cu, Zn or Sn)-DDT units of QDs are first exchanged by the pre-conjugated Cd-oleate via successive ionic layer adsorption and reaction (SILAR) procedure accompanied with the formation of a core/shell structure. The weak bonded oleic acid (OA) can be finally replaced by MPA and the constructed water soluble CZTS/CdSe QDSC achieves an impressive conversion efficiency of 4.70%. The electron transport and recombination dynamic processes are confirmed by intensity modulated photocurrent spectroscopy (IMPS)/intensity-modulated photovoltage spectroscopy (IMVS) measurements. It is found that the removal of long alkyl chain is conducive to improve the electron transport process and the type-II core/shell structure is beneficial to accelerate electron transport and retard charge recombination. This effective ligand removal strategy is proved to be more convenient for the applying of quaternary QDs in QDSC and would boost a more powerful efficiency in the future work. (C) 2016 Elsevier B.V. All rights reserved.

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