Direct-Bandgap 2D Silver-Bismuth Iodide Double Perovskite: The Structure-Directing Influence of an Oligothiophene Spacer Cation

التفاصيل البيبلوغرافية
العنوان: Direct-Bandgap 2D Silver-Bismuth Iodide Double Perovskite: The Structure-Directing Influence of an Oligothiophene Spacer Cation
المؤلفون: David J. Dirkes, Volker Blum, Manoj K. Jana, Seyitliyev Dovletgeldi, Svenja M. Janke, Wei You, Kenan Gundogdu, Xixi Qin, Chi Liu, David B. Mitzi
بيانات النشر: The University of North Carolina at Chapel Hill University Libraries, 2019.
سنة النشر: 2019
مصطلحات موضوعية: chemistry.chemical_classification, Denticity, Hydrogen bond, Iodide, Halide, General Chemistry, 010402 general chemistry, 01 natural sciences, Biochemistry, Catalysis, 0104 chemical sciences, Colloid and Surface Chemistry, chemistry, Chemical physics, Direct and indirect band gaps, Density functional theory, Chemical stability, Structural rigidity
الوصف: Three-dimensional (3D) hybrid organic-inorganic lead halide perovskites (HOIPs) feature remarkable optoelectronic properties for solar energy conversion but suffer from long-standing issues of environmental stability and lead toxicity. Associated two-dimensional (2D) analogues are garnering increasing interest due to superior chemical stability, structural diversity, and broader property tunability. Toward lead-free 2D HOIPs, double perovskites (DPs) with mixed-valent dual metals are attractive. Translation of mixed-metal DPs to iodides, with their prospectively lower bandgaps, represents an important target for semiconducting halide perovskites, but has so far proven inaccessible using traditional spacer cations due to either intrinsic instability or formation of competing non-perovskite phases. Here, we demonstrate the first example of a 2D Ag-Bi iodide DP with a direct bandgap of 2.00(2) eV, templated by a layer of bifunctionalized oligothiophene cations, i.e., (bis-aminoethyl)bithiophene, through a collective influence of aromatic interactions, hydrogen bonding, bidentate tethering, and structural rigidity. Hybrid density functional theory calculations for the new material reveal a direct bandgap, consistent with the experimental value, and relatively flat band edges derived principally from Ag-d/I-p (valence band) and Bi-p/I-p (conduction band) states. This work opens up new avenues for exploring specifically designed organic cations to stabilize otherwise inaccessible 2D HOIPs with potential applications for optoelectronics.
اللغة: English
DOI: 10.17615/kqz9-ac85
URL الوصول: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::ac4a9e52da3ce1f9185e853119f0af0e
حقوق: OPEN
رقم الأكسشن: edsair.doi.dedup.....ac4a9e52da3ce1f9185e853119f0af0e
قاعدة البيانات: OpenAIRE