Improved open-circuit voltage in ZnO-PbSe quantum dot solar cells by understanding and reducing losses arising from the ZnO conduction band tail

Publikation: Beitrag in FachzeitschriftForschungsartikelBeigetragenBegutachtung

Beitragende

  • Robert L.Z. Hoye - , University of Cambridge (Autor:in)
  • Bruno Ehrler - , University of Cambridge (Autor:in)
  • Marcus L. Böhm - , University of Cambridge (Autor:in)
  • David Muñoz-Rojas - , University of Cambridge, Instituto de Ciencia de Materiales de Barcelona (ICMAB-CSIC) (Autor:in)
  • Rashid M. Altamimi - , King Abdulaziz City for Science and Technology (Autor:in)
  • Ahmed Y. Alyamani - , King Abdulaziz City for Science and Technology (Autor:in)
  • Yana Vaynzof - , University of Cambridge (Autor:in)
  • Aditya Sadhanala - , University of Cambridge (Autor:in)
  • Giorgio Ercolano - , University of Cambridge (Autor:in)
  • Neil C. Greenham - , University of Cambridge (Autor:in)
  • Richard H. Friend - , University of Cambridge (Autor:in)
  • Judith L. MacManus-Driscoll - , University of Cambridge (Autor:in)
  • Kevin P. Musselman - , University of Cambridge (Autor:in)

Abstract

Colloidal quantum dot solar cells (CQDSCs) are attracting growing attention owing to significant improvements in efficiency. However, even the best depleted-heterojunction CQDSCs currently display open-circuit voltages (V OCs) at least 0.5 V below the voltage corresponding to the bandgap. We find that the tail of states in the conduction band of the metal oxide layer can limit the achievable device efficiency. By continuously tuning the zinc oxide conduction band position via magnesium doping, we probe this critical loss pathway in ZnO-PbSe CQDSCs and optimize the energetic position of the tail of states, thereby increasing both the VOC (from 408 mV to 608 mV) and the device efficiency. A fundamental loss mechanism in depleted-heterojunction colloidal quantum dot solar cells (CQDSCs) is identified to arise from the metal oxide conduction band tail. This loss is studied in ZnO-PbSe CQDSCs and minimized by optimizing the ZnO-PbSe conduction band alignment via magnesium-doping of the ZnO. Significant improvements in open-circuit voltage and efficiency are achieved.

Details

OriginalspracheEnglisch
Aufsatznummer1301544
FachzeitschriftAdvanced energy materials
Jahrgang4
Ausgabenummer8
PublikationsstatusVeröffentlicht - 3 Juni 2014
Peer-Review-StatusJa
Extern publiziertJa

Schlagworte

Ziele für nachhaltige Entwicklung

Schlagwörter

  • band tail, colloidal quantum dot solar cells, magnesium doping, spatial atomic layer deposition, ZnO bandgap tuning