Literature DB >> 11671340

Design, Structure, and Optical Properties of Organic-Inorganic Perovskites Containing an Oligothiophene Chromophore.

David B. Mitzi1, Konstantinos Chondroudis, Cherie R. Kagan.   

Abstract

A quaterthiophene derivative, 5,5' "-bis(aminoethyl)-2,2':5',2' ':5' ',2' "-quaterthiophene (AEQT), has been selected for incorporation within the layered organic-inorganic perovskite structure. In addition to having an appropriate molecular shape and two tethering aminoethyl groups to bond to the inorganic framework, AEQT is also a dye and can influence the optical properties of lead(II) halide-based perovskites. Crystals of C(20)H(22)S(4)N(2)PbBr(4) were grown from a slowly cooled aqueous solution containing lead(II) bromide and quaterthiophene derivative (AEQT.2HBr) salts. The new layered perovskite adopts a monoclinic (C2/c) subcell with the lattice parameters a = 39.741(2) Å, b = 5.8420(3) Å, c = 11.5734(6) Å, beta = 92.360(1) degrees, and Z = 4. Broad superstructure peaks are observed in the X-ray diffraction data, indicative of a poorly ordered, doubled supercell along both the a and b axes. The quaterthiophene segment of AEQT(2+) is nearly planar, with a syn-anti-syn relationship between adjacent thiophene rings. Each quaterthiophene chromophore is ordered between nearest-neighbor lead(II) bromide sheets in a herringbone arrangement with respect to neighboring quaterthiophenes. Room temperature optical absorption spectra for thermally ablated films of the perovskites (AEQT)PbX(4) (X = Cl, Br, I) exhibit an exciton peak arising from the lead(II) halide sheets, along with absorption from the quaterthiophene moiety. No evidence of the inorganic sheet excitonic transition is observed in the photoluminescence spectra for any of the chromophore-containing perovskites. However, strong quaterthiophene photoluminescence is observed for X = Cl, with an emission peak at approximately lambda(max) = 532 nm. Similar photoluminescence is observed for the X = Br and I materials, but with substantial quenching, as the inorganic layer band gap decreases relative to the chromophore HOMO-LUMO gap.

Entities:  

Year:  1999        PMID: 11671340     DOI: 10.1021/ic991048k

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  10 in total

1.  Implicit Tandem Organic-Inorganic Hybrid Perovskite Solar Cells Based on Internal Dye Sensitization: Robotized Screening, Synthesis, Device Implementation, and Theoretical Insights.

Authors:  Allan Starkholm; Lars Kloo; Per H Svensson
Journal:  J Am Chem Soc       Date:  2020-10-15       Impact factor: 15.419

2.  Organic semiconductor-incorporated two-dimensional halide perovskites.

Authors:  Yao Gao; Letian Dou
Journal:  Natl Sci Rev       Date:  2021-06-24       Impact factor: 23.178

3.  Molecular engineering of organic-inorganic hybrid perovskites quantum wells.

Authors:  Yao Gao; Enzheng Shi; Shibin Deng; Stephen B Shiring; Jordan M Snaider; Chao Liang; Biao Yuan; Ruyi Song; Svenja M Janke; Alexander Liebman-Peláez; Pilsun Yoo; Matthias Zeller; Bryan W Boudouris; Peilin Liao; Chenhui Zhu; Volker Blum; Yi Yu; Brett M Savoie; Libai Huang; Letian Dou
Journal:  Nat Chem       Date:  2019-11-11       Impact factor: 24.427

Review 4.  Organic/Inorganic Metal Halide Perovskite Optoelectronic Devices beyond Solar Cells.

Authors:  Jiachen Sun; Jiang Wu; Xin Tong; Feng Lin; Yanan Wang; Zhiming M Wang
Journal:  Adv Sci (Weinh)       Date:  2018-03-06       Impact factor: 16.806

5.  Computational Design of Two-Dimensional Perovskites with Functional Organic Cations.

Authors:  Sudeep Maheshwari; Tom J Savenije; Nicolas Renaud; Ferdinand C Grozema
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2018-07-08       Impact factor: 4.126

6.  Linear and nonlinear optical probing of various excitons in 2D inorganic-organic hybrid structures.

Authors:  Mohammad Adnan; Jeremy J Baumberg; G Vijaya Prakash
Journal:  Sci Rep       Date:  2020-02-13       Impact factor: 4.379

7.  Overcoming the exciton binding energy in two-dimensional perovskite nanoplatelets by attachment of conjugated organic chromophores.

Authors:  María C Gélvez-Rueda; Magnus B Fridriksson; Rajeev K Dubey; Wolter F Jager; Ward van der Stam; Ferdinand C Grozema
Journal:  Nat Commun       Date:  2020-04-20       Impact factor: 14.919

8.  Modifying morphology and defects of low-dimensional, semi-transparent perovskite thin films via solvent type.

Authors:  Jitprabhat Ponchai; Paphada Kaewurai; Chirapa Boonthum; Kusuma Pinsuwan; Thidarat Supasai; Somboon Sahasithiwat; Pongsakorn Kanjanaboos
Journal:  RSC Adv       Date:  2019-04-16       Impact factor: 4.036

Review 9.  Recent Progress in Single-Crystalline Perovskite Research Including Crystal Preparation, Property Evaluation, and Applications.

Authors:  Yucheng Liu; Zhou Yang; Shengzhong Frank Liu
Journal:  Adv Sci (Weinh)       Date:  2017-11-10       Impact factor: 16.806

10.  Inducing Charge Separation in Solid-State Two-Dimensional Hybrid Perovskites through the Incorporation of Organic Charge-Transfer Complexes.

Authors:  María C Gélvez-Rueda; Wouter T M Van Gompel; Roald Herckens; Laurence Lutsen; Dirk Vanderzande; Ferdinand C Grozema
Journal:  J Phys Chem Lett       Date:  2020-01-21       Impact factor: 6.475

  10 in total

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