Hindered formation of photoinactive delta-FAPbI3 phase and hysteresis-free mixed-cation planar heterojunction perovskite solar cells with enhanced efficiency via potassium incorporation

, , , Zhang, Yaohong, , , Shen, Qing, Wilson, Gregory, & (2018) Hindered formation of photoinactive delta-FAPbI3 phase and hysteresis-free mixed-cation planar heterojunction perovskite solar cells with enhanced efficiency via potassium incorporation. Journal of Physical Chemistry Letters, 9, pp. 2113-2120.

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Organic–inorganic hybrid lead halide perovskite solar cells have demonstrated competitive power conversion efficiency over 22%; nevertheless, critical issues such as unsatisfactory device stability, serious current–voltage hysteresis, and formation of photo nonactive perovskite phases are obstacles for commercialization of this photovoltaics technology. Herein we report a facial yet effective method to hinder formation of photoinactive δ-FAPbI<sub>3</sub> and hysteresis behavior in planar heterojunction perovskite solar cells based on K<sub>x</sub>(MA<sub0.17</sub>FA<sub>0.83</sub>)<sub>1–x</sub>PbI<sub>2.5</sub>Br<sub>0.5</sub> (0≤ x ≤ 0.1) through incorporation of potassium ions (K<sup>+</sup>). X-ray diffraction patterns demonstrate formation of photoinactive δ-FAPbI<sub>3</sub> was almost completely suppressed after K<sup>+</sup> incorporation. Density functional theory calculation shows K<sup>+</sup> prefers to enter the interstitial sites of perovskite lattice, leading to chemical environmental change in the crystal structure. Ultrafast transient absorption spectroscopy has revealed that K<sup>+</sup> incorporation leads to enhanced carrier lifetime by 50%, which is also confirmed by reduced trap-assisted recombination of the perovskite solar cells containing K<sup>+</sup> in photovoltage decay. Ultraviolet photoelectron spectroscopy illustrates that K<sup>+</sup> incorporation results in a significant rise of conduction band minimum of the perovskite material by 130 meV, leading to a more favorable energy alignment with electron transporting material. At the optimal content of 3% K<sup>+</sup> (molar ratio, relative to the total monovalent cations), nearly hysteresis-free, enhanced power conversion efficiencies from 15.72% to 17.23% were obtained in this solar cell.

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ID Code: 223786
Item Type: Contribution to Journal (Journal Article)
Refereed: Yes
ORCID iD:
Pham, Ngoc Duyorcid.org/0000-0002-7595-4357
Du, Aijunorcid.org/0000-0002-3369-3283
Wang, Hongxiaorcid.org/0000-0003-0146-5259
Measurements or Duration: 8 pages
Keywords: K-doping, mix cation perovskite, perovskite solar cells, reduced hysteresis, yellow phase FAPbI3
DOI: 10.1021/acs.jpclett.8b00830
ISSN: 1948-7185
Pure ID: 33348767
Divisions: Past > Institutes > Institute for Future Environments
Past > QUT Faculties & Divisions > Science & Engineering Faculty
Funding:
Copyright Owner: Consult author(s) regarding copyright matters
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Deposited On: 06 Nov 2021 18:06
Last Modified: 25 Jul 2024 11:19