Rapid In Situ Ligand-Exchange Process Used to Prepare 3D PbSe Nanocrystal Superlattice Infrared Photodetectors
- PMID: 34018675
- DOI: 10.1002/smll.202101166
Rapid In Situ Ligand-Exchange Process Used to Prepare 3D PbSe Nanocrystal Superlattice Infrared Photodetectors
Abstract
Colloidal semiconductor nanocrystals are important building blocks for low-cost, solution-processed electronic devices with tunable functionalities. Considerable progress is made in improving charge transport through nanocrystal films by exchanging long insulating ligands with shorter passivating ligands. To take full advantage of this strategy, it is equally important to fabricate close-packed structures that reduce the average interparticle spacing. Yet it remains a challenge to retain long-range, close-packed order after ligand exchange. Here, a novel one-step in situ ligand-exchange method is demonstrated that enables rapid (5 min) ligand exchange of nanocrystal films, which are more than 50 layers thick. Using this simple and efficient method, it is shown that the face-centered cubic ordering of 500 nm thick PbSe nanocrystal films is retained after ligand exchange from oleic acid to benzoic acid. Moreover, it is demonstrated that PbSe nanocrystal photodetectors with a well-ordered structure have superior optoelectronic properties compared to disordered films; ordered films have a 16× higher responsivity of ≈0.25 A W-1 at 1 V and a 2× faster response time. As far as it is known, this is the first report to realize a rapid one-step ligand exchange through a thick superlattice film with retention of long-range order.
Keywords: assembly; infrared detectors; lead selenide; ligand exchange; nanomaterials; nanoparticles; superlattices.
© 2021 Lawrence Livermore National Laboratory/Security, LLC. Small published by Wiley-VCH GmbH.
References
-
- M. A. Boles, M. Engel, D. V. Talapin, Chem. Rev. 2016, 116, 11220.
-
- D. V. Talapin, J.-S. Lee, M. V. Kovalenko, E. V. Shevchenko, Chem. Rev. 2010, 110, 389.
-
- M. V. Kovalenko, L. Manna, A. Cabot, Z. Hens, D. V. Talapin, C. R. Kagan, V. I. Klimov, A. L. Rogach, P. Reiss, D. J. Milliron, P. Guyot-Sionnnest, G. Konstantatos, W. J. Parak, T. Hyeon, B. A. Korgel, C. B. Murray, W. Heiss, ACS Nano 2015, 9, 1012.
-
- H. W. Hillhouse, M. C. Beard, Curr. Opin. Colloid Interface Sci. 2009, 14, 245.
-
- C. J. Stolle, T. B. Harvey, B. A. Korgel, Curr. Opin. Chem. Eng. 2013, 2, 160.
Grants and funding
- 18-LW-003/Lawrence Livermore National Laboratory Directed Research and Development Program
- TCF-CP-18-15577/DOE Technology Commercialization Fund
- DE-AC52-07NA27344/U.S. Department of Energy by Lawrence Livermore National Laboratory
- DE-AC02-05CH11231/Office of Science, Office of Basic Energy Sciences, the U.S. Department of Energy
- 18-LW-003/Lawrence Livermore National Laboratory
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