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Surface analytical investigation on organometal triiodide perovskite
Author(s) -
Chenggong Wang,
Xiaoliang Liu,
Congcong Wang,
Zhengguo Xiao,
Cheng Bi,
Yuchuan Shao,
Jinsong Huang,
Yongli Gao
Publication year - 2015
Publication title -
journal of vacuum science and technology b nanotechnology and microelectronics materials processing measurement and phenomena
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.429
H-Index - 119
eISSN - 2166-2754
pISSN - 2166-2746
DOI - 10.1116/1.4915499
Subject(s) - perovskite (structure) , x ray photoelectron spectroscopy , ultraviolet photoelectron spectroscopy , materials science , photoemission spectroscopy , inverse photoemission spectroscopy , band bending , binding energy , perovskite solar cell , trihalide , analytical chemistry (journal) , spectroscopy , atomic physics , chemistry , crystallography , optoelectronics , inorganic chemistry , nuclear magnetic resonance , physics , chromatography , halide , quantum mechanics
In a little over a year, there has been an unexpected breakthrough and rapid evolution of highly efficient solid-state hybrid solar cells based on organometal trihalide perovskite materials. This technology has the potential to produce solar cells with the very highest efficiencies while retaining the very lowest cost. The authors have measured the electronic density of states of CH3NH3PbI3 using ultraviolet photoemission spectroscopy (UPS), inverse photoemission spectroscopy (IPES), and x-ray photoemission spectroscopy (XPS). The valence band maximum and conduction band minimum positions are obtained from the UPS and IPES spectra, respectively, by linear extrapolation of the leading edges. The authors investigate the Au/perovskite and C60/perovskite interfaces by UPS and XPS. An interface dipole of 0.1 eV is observed at Au/perovskite interface. The energy levels of perovskite shift upward by ca.0.4 eV with Au coverage of 64 A upon it, resulting in band bending, hence a built-in field in perovskite that e...

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