4.8 Article

On the optical anisotropy in 2D metal-halide perovskites

期刊

NANOSCALE
卷 14, 期 3, 页码 752-765

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1nr06899g

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资金

  1. U.S. Department of Energy (DOE) [DE-AC36-08GO28308]
  2. Center for Hybrid Organic Inorganic Semiconductors for Energy - Office of Science, Office of Basic Energy Sciences within the U.S. DOE
  3. NREL's LDRD fund
  4. WIRL-COFUND fellowship at the University of Warwick, under the Marie Sklodowska Curie Actions COFUND program [713548]
  5. Molecular Sciences Software Institute under National Science Foundation (NSF) [1547580]
  6. U.S. DOE [DE-AC02-05CH11231]
  7. NSF [ACI-1548562]
  8. INCITE program
  9. DOE [DE-AC0206CH11357]
  10. Office of Advanced Cyberinfrastructure (OAC)
  11. Direct For Computer & Info Scie & Enginr [1547580] Funding Source: National Science Foundation

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In this study, a comprehensive approach combining experimental and theoretical methods is used to investigate the optical properties and anisotropy of two-dimensional metal-halide perovskites. The research reveals the fundamental physical parameters that shape the electronic structure of these materials and demonstrates a strong correlation between structure and induced optical anisotropy.
Two-dimensional metal-halide perovskites (MHPs) are versatile solution-processed organic/inorganic quantum wells where the structural anisotropy creates profound anisotropy in their electronic and excitonic properties and associated optical constants. We here employ a wholistic framework, based on semiempirical modeling (k center dot p/effective mass theory calculations) informed by hybrid density functional theory (DFT) and multimodal spectroscopic ellipsometry on (C6H5(CH2)(2)NH3)(2)PbI4 films and crystals, that allows us to link the observed optical properties and anisotropy precisely to the underlying physical parameters that shape the electronic structure of a layered MHP. We find substantial frequency-dependent anisotropy in the optical constants and close correspondence between experiment and theory, demonstrating a high degree of in-plane alignment of the two-dimensional planes in both spin-coated thin films and cleaved single crystals made in this study. Hybrid DFT results elucidate the degree to which organic and inorganic frontier orbitals contribute to optical transitions polarized along a particular axis. The combined experimental and theoretical approach enables us to estimate the fundamental electronic bandgap of 2.65-2.68 eV in this prototypical 2D perovskite and to determine the spin-orbit coupling (Delta(SO) = 1.20 eV) and effective crystal field (delta = -1.36 eV) which break the degeneracy of the frontier conduction band states and determine the exciton fine structure. The methods and results described here afford a better understanding of the connection between structure and induced optical anisotropy in quantum-confined MHPs, an important structure-property relationship for optoelectronic applications and devices.

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