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Photocurrent in Metal-Halide Perovskite/Organic Semiconductor Heterostructures: Impact of Microstructure on Charge Generation Efficiency.
Tyznik, Colin; Lee, James; Sorli, Jeni; Liu, Xiaojie; Holland, Emma K; Day, Cynthia S; Anthony, John E; Loo, Yueh-Lin; Vardeny, Z Valy; Jurchescu, Oana D.
Affiliation
  • Tyznik C; Department of Physics, Wake Forest University, Winston-Salem, North Carolina 27109, United States.
  • Lee J; Center for Functional Materials, Wake Forest University, Winston-Salem, North Carolina 27109, United States.
  • Sorli J; Department of Physics, Wake Forest University, Winston-Salem, North Carolina 27109, United States.
  • Liu X; Center for Functional Materials, Wake Forest University, Winston-Salem, North Carolina 27109, United States.
  • Holland EK; Department of Chemical and Biological Engineering, Princeton University, Princeton, New Jersey 08544, United States.
  • Day CS; Andlinger Center for Energy and the Environment, Princeton University, Princeton, New Jersey 08544, United States.
  • Anthony JE; Department of Physics, University of Utah, Salt Lake City, Utah 84112, United States.
  • Loo YL; Department of Chemistry, University of Kentucky, Lexington, Kentucky 40506, United States.
  • Vardeny ZV; Center for Applied Energy Research, University of Kentucky, Lexington, Kentucky 40506, United States.
  • Jurchescu OD; Center for Functional Materials, Wake Forest University, Winston-Salem, North Carolina 27109, United States.
ACS Appl Mater Interfaces ; 13(8): 10231-10238, 2021 Mar 03.
Article in En | MEDLINE | ID: mdl-33591716
ABSTRACT
Hybrid organic-inorganic metal-halide perovskites have emerged as versatile materials for enabling low-cost, mechanically flexible optoelectronic applications. The progress has been commendable; however, technological breakthroughs have outgrown the basic understanding of processes occurring in bulk and at device interfaces. Here, we investigated the photocurrent at perovskite/organic semiconductor interfaces in relation to the microstructure of electronically active layers. We found that the photocurrent response is significantly enhanced in the bilayer structure as a result of a more efficient dissociation of the photogenerated excitons and trions in the perovskite layer. The increase in the grain size within the organic semiconductor layer results in reduced trapping and further enhances the photocurrent by extending the photocarriers' lifetime. The photodetector responsivity and detectivity have improved by 1 order of magnitude in the optimized samples, reaching values of 6.1 ± 1.1 A W-1, and 1.5 × 1011 ± 4.7 × 1010 Jones, respectively, and the current-voltage hysteresis has been eliminated. Our results highlight the importance of fine-tuning film microstructure in reducing the loss processes in thin-film optoelectronics based on metal-halide semiconductors and provide a powerful interfacial design method to consistently achieve high-performance photodetectors.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ACS Appl Mater Interfaces Journal subject: BIOTECNOLOGIA / ENGENHARIA BIOMEDICA Year: 2021 Document type: Article Affiliation country: Estados Unidos Publication country: EEUU / ESTADOS UNIDOS / ESTADOS UNIDOS DA AMERICA / EUA / UNITED STATES / UNITED STATES OF AMERICA / US / USA

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ACS Appl Mater Interfaces Journal subject: BIOTECNOLOGIA / ENGENHARIA BIOMEDICA Year: 2021 Document type: Article Affiliation country: Estados Unidos Publication country: EEUU / ESTADOS UNIDOS / ESTADOS UNIDOS DA AMERICA / EUA / UNITED STATES / UNITED STATES OF AMERICA / US / USA