Visualizing the Low-Energy Electronic Structure of Prototypical Hybrid Halide Perovskite through Clear Band Measurements

Authors
Park, JeehongHuh, SoonsangChoi, Young WooKang, DongheeKim, MinsooKim, DonghanPark, SoohyungChoi, Hyoung JoonKim, ChangyoungYi, Yeonjin
Issue Date
2024-03
Publisher
American Chemical Society
Citation
ACS Nano, v.18, no.10, pp.7570 - 7579
Abstract
Organic?inorganic hybrid perovskites (OIHPs) are a promising class of materials that rival conventional semiconductors in various optoelectronic applications. However, unraveling the precise nature of their low-energy electronic structures continues to pose a significant challenge, primarily due to the absence of clear band measurements. Here, we investigate the low-energy electronic structure of CH3NH3PbI3 (MAPI3) using angle-resolved photoelectron spectroscopy combined with ab initio density functional theory. We successfully visualize the electronic structure of MAPI3 near the bulk valence band maximum by using a laboratory photon source (He Iα, 21.2 eV) at low temperature and explore its fundamental properties. The observed valence band exhibits a highly isotropic and parabolic band characterized by small effective masses of 0.20?0.21 me, without notable spectral signatures associated with a large polaron or the Rashba effect, subjects that are intensely debated in the literature. Concurrently, our spin-resolved measurements directly disprove the giant Rashba scenario previously suggested in a similar perovskite compound by establishing an upper limit for the Rashba parameter (αR) of 0.28 eV ?. Our results unveil the unusually complex nature of the low-energy electronic structure of OIHPs, thereby advancing our fundamental understanding of this important class of materials.
Keywords
METHYLAMMONIUM LEAD IODIDE; EFFECTIVE MASSES; CH3NH3PBI3; CRYSTAL; VALENCE; Rashbaeffect; band folding; density functional theory; angle-resolved photoelectron spectroscopy; halide perovskites; effective mass; spin-resolvedphotoelectron spectroscopy
ISSN
1936-0851
URI
https://pubs.kist.re.kr/handle/201004/149333
DOI
10.1021/acsnano.3c12587
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KIST Article > 2024
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