Literature DB >> 28930986

Low Pressure Vapor-assisted Solution Process for Tunable Band Gap Pinhole-free Methylammonium Lead Halide Perovskite Films.

Carolin M Sutter-Fella1, Yanbo Li2, Nicola Cefarin3, Aya Buckley4, Quynh Phuong Ngo5, Ali Javey6, Ian D Sharp7, Francesca M Toma8.   

Abstract

Organo-lead halide perovskites have recently attracted great interest for potential applications in thin-film photovoltaics and optoelectronics. Herein, we present a protocol for the fabrication of this material via the low-pressure vapor assisted solution process (LP-VASP) method, which yields ~19% power conversion efficiency in planar heterojunction perovskite solar cells. First, we report the synthesis of methylammonium iodide (CH3NH3I) and methylammonium bromide (CH3NH3Br) from methylamine and the corresponding halide acid (HI or HBr). Then, we describe the fabrication of pinhole-free, continuous methylammonium-lead halide perovskite (CH3NH3PbX3 with X = I, Br, Cl and their mixture) films with the LP-VASP. This process is based on two steps: i) spin-coating of a homogenous layer of lead halide precursor onto a substrate, and ii) conversion of this layer to CH3NH3PbI3-xBrx by exposing the substrate to vapors of a mixture of CH3NH3I and CH3NH3Br at reduced pressure and 120 °C. Through slow diffusion of the methylammonium halide vapor into the lead halide precursor, we achieve slow and controlled growth of a continuous, pinhole-free perovskite film. The LP-VASP allows synthetic access to the full halide composition space in CH3NH3PbI3-xBrx with 0 ≤ x ≤ 3. Depending on the composition of the vapor phase, the bandgap can be tuned between 1.6 eV ≤ Eg ≤ 2.3 eV. In addition, by varying the composition of the halide precursor and of the vapor phase, we can also obtain CH3NH3PbI3-xClx. Films obtained from the LP-VASP are reproducible, phase pure as confirmed by X-ray diffraction measurements, and show high photoluminescence quantum yield. The process does not require the use of a glovebox.

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Year:  2017        PMID: 28930986      PMCID: PMC5752192          DOI: 10.3791/55404

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  19 in total

1.  Efficient Monolithic Perovskite/Silicon Tandem Solar Cell with Cell Area >1 cm(2).

Authors:  Jérémie Werner; Ching-Hsun Weng; Arnaud Walter; Luc Fesquet; Johannes Peter Seif; Stefaan De Wolf; Bjoern Niesen; Christophe Ballif
Journal:  J Phys Chem Lett       Date:  2015-12-24       Impact factor: 6.475

2.  Efficient planar heterojunction perovskite solar cells by vapour deposition.

Authors:  Mingzhen Liu; Michael B Johnston; Henry J Snaith
Journal:  Nature       Date:  2013-09-11       Impact factor: 49.962

3.  Chemical management for colorful, efficient, and stable inorganic-organic hybrid nanostructured solar cells.

Authors:  Jun Hong Noh; Sang Hyuk Im; Jin Hyuck Heo; Tarak N Mandal; Sang Il Seok
Journal:  Nano Lett       Date:  2013-03-21       Impact factor: 11.189

4.  High Photoluminescence Quantum Yield in Band Gap Tunable Bromide Containing Mixed Halide Perovskites.

Authors:  Carolin M Sutter-Fella; Yanbo Li; Matin Amani; Joel W Ager; Francesca M Toma; Eli Yablonovitch; Ian D Sharp; Ali Javey
Journal:  Nano Lett       Date:  2015-12-28       Impact factor: 11.189

5.  Solvent engineering for high-performance inorganic-organic hybrid perovskite solar cells.

Authors:  Nam Joong Jeon; Jun Hong Noh; Young Chan Kim; Woon Seok Yang; Seungchan Ryu; Sang Il Seok
Journal:  Nat Mater       Date:  2014-07-06       Impact factor: 43.841

6.  High Photoluminescence Efficiency and Optically Pumped Lasing in Solution-Processed Mixed Halide Perovskite Semiconductors.

Authors:  Felix Deschler; Michael Price; Sandeep Pathak; Lina E Klintberg; David-Dominik Jarausch; Ruben Higler; Sven Hüttner; Tomas Leijtens; Samuel D Stranks; Henry J Snaith; Mete Atatüre; Richard T Phillips; Richard H Friend
Journal:  J Phys Chem Lett       Date:  2014-04-02       Impact factor: 6.475

7.  Electron-hole diffusion lengths exceeding 1 micrometer in an organometal trihalide perovskite absorber.

Authors:  Samuel D Stranks; Giles E Eperon; Giulia Grancini; Christopher Menelaou; Marcelo J P Alcocer; Tomas Leijtens; Laura M Herz; Annamaria Petrozza; Henry J Snaith
Journal:  Science       Date:  2013-10-18       Impact factor: 47.728

8.  Cesium-containing triple cation perovskite solar cells: improved stability, reproducibility and high efficiency.

Authors:  Michael Saliba; Taisuke Matsui; Ji-Youn Seo; Konrad Domanski; Juan-Pablo Correa-Baena; Mohammad Khaja Nazeeruddin; Shaik M Zakeeruddin; Wolfgang Tress; Antonio Abate; Anders Hagfeldt; Michael Grätzel
Journal:  Energy Environ Sci       Date:  2016-03-29       Impact factor: 38.532

9.  Defective TiO2 with high photoconductive gain for efficient and stable planar heterojunction perovskite solar cells.

Authors:  Yanbo Li; Jason K Cooper; Wenjun Liu; Carolin M Sutter-Fella; Matin Amani; Jeffrey W Beeman; Ali Javey; Joel W Ager; Yi Liu; Francesca M Toma; Ian D Sharp
Journal:  Nat Commun       Date:  2016-08-18       Impact factor: 14.919

10.  Efficient luminescent solar cells based on tailored mixed-cation perovskites.

Authors:  Dongqin Bi; Wolfgang Tress; M Ibrahim Dar; Peng Gao; Jingshan Luo; Clémentine Renevier; Kurt Schenk; Antonio Abate; Fabrizio Giordano; Juan-Pablo Correa Baena; Jean-David Decoppet; Shaik Mohammed Zakeeruddin; Mohammad Khaja Nazeeruddin; Michael Grätzel; Anders Hagfeldt
Journal:  Sci Adv       Date:  2016-01-01       Impact factor: 14.136

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