Literature DB >> 29300468

Universal Approach toward Hysteresis-Free Perovskite Solar Cell via Defect Engineering.

Dae-Yong Son1, Seul-Gi Kim2, Ja-Young Seo2, Seon-Hee Lee1, Hyunjung Shin1, Donghwa Lee3, Nam-Gyu Park2.   

Abstract

Organic-inorganic halide perovskite is believed to be a potential candidate for high efficiency solar cells because power conversion efficiency (PCE) was certified to be more than 22%. Nevertheless, mismatch of PCE due to current density (J)-voltage (V) hysteresis in perovskite solar cells is an obstacle to overcome. There has been much lively debate on the origin of J-V hysteresis; however, effective methodology to solve the hysteric problem has not been developed. Here we report a universal approach for hysteresis-free perovskite solar cells via defect engineering. A severe hysteresis observed from the normal mesoscopic structure employing TiO2 and spiro-MeOTAD is almost removed or does not exist upon doping the pure perovskites, CH3NH3PbI3 and HC(NH2)2PbI3, and the mixed cation/anion perovskites, FA0.85MA0.15PbI2.55Br0.45 and FA0.85MA0.1Cs0.05PbI2.7Br0.3, with potassium iodide. Substantial reductions in low-frequency capacitance and bulk trap density are measured from the KI-doped perovskite, which is indicative of trap-hysteresis correlation. A series of experiments with alkali metal iodides of LiI, NaI, KI, RbI and CsI reveals that potassium ion is the right element for hysteresis-free perovskite. Theoretical studies suggest that the atomistic origin of the hysteresis of perovskite solar cells is not the migration of iodide vacancy but results from the formation of iodide Frenkel defect. Potassium ion is able to prevent the formation of Frenkel defect since K+ energetically prefers the interstitial site. A complete removal of hysteresis is more pronounced at mixed perovskite system as compared to pure perovskites, which is explained by lower formation energy of K interstitial (-0.65 V for CH3NH3PbI3 vs -1.17 V for mixed perovskite). The developed KI doping methodology is universally adapted for hysteresis-free perovskite regardless of perovskite composition and device structure.

Entities:  

Year:  2018        PMID: 29300468     DOI: 10.1021/jacs.7b10430

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  14 in total

1.  Template-Assisted Formation of High-Quality α-Phase HC(NH2)2PbI3 Perovskite Solar Cells.

Authors:  Pengju Shi; Yong Ding; Yingke Ren; Xiaoqiang Shi; Zulqarnain Arain; Cheng Liu; Xuepeng Liu; Molang Cai; Guozhong Cao; Mohammad Khaja Nazeeruddin; Songyuan Dai
Journal:  Adv Sci (Weinh)       Date:  2019-09-10       Impact factor: 16.806

2.  Synergetic surface charge transfer doping and passivation toward high efficient and stable perovskite solar cells.

Authors:  Xing Guo; Jie Su; Zhenhua Lin; Xinhao Wang; Qingrui Wang; Zebing Zeng; Jingjing Chang; Yue Hao
Journal:  iScience       Date:  2021-03-05

Review 3.  Toward stable lead halide perovskite solar cells: A knob on the A/X sites components.

Authors:  Shurong Wang; Aili Wang; Feng Hao
Journal:  iScience       Date:  2021-12-09

4.  A high-efficiency and stable perovskite solar cell fabricated in ambient air using a polyaniline passivation layer.

Authors:  Dong In Kim; Ji Won Lee; Rak Hyun Jeong; Jin-Hyo Boo
Journal:  Sci Rep       Date:  2022-01-13       Impact factor: 4.379

5.  Mechanochemical synthesis of pure phase mixed-cation/anion (FAPbI3) x (MAPbBr3)1-x hybrid perovskite materials: compositional engineering and photovoltaic performance.

Authors:  Sheng Tang; Xinyu Xiao; Jing Hu; Bo Gao; Hunglin Chen; Zhuang Zuo; Qi Qi; Zongyang Peng; Jianchun Wen; Dechun Zou
Journal:  RSC Adv       Date:  2021-02-02       Impact factor: 3.361

6.  Potassium iodide reduces the stability of triple-cation perovskite solar cells.

Authors:  Tarek I Alanazi; Onkar S Game; Joel A Smith; Rachel C Kilbride; Claire Greenland; Rahul Jayaprakash; Kyriacos Georgiou; Nicholas J Terrill; David G Lidzey
Journal:  RSC Adv       Date:  2020-11-06       Impact factor: 4.036

Review 7.  Progress, highlights and perspectives on NiO in perovskite photovoltaics.

Authors:  Diego Di Girolamo; Francesco Di Giacomo; Fabio Matteocci; Andrea Giacomo Marrani; Danilo Dini; Antonio Abate
Journal:  Chem Sci       Date:  2020-07-13       Impact factor: 9.825

8.  Reducing Defects in Organic-Lead Halide Perovskite Film by Delayed Thermal Annealing Combined with KI/I2 for Efficient Perovskite Solar Cells.

Authors:  Kun-Mu Lee; Shun-Hsiang Chan; Wei-Hao Chiu; Seoungjun Ahn; Chang-Chieh Ting; Yin-Hsuan Chang; Vembu Suryanarayanan; Ming-Chung Wu; Ching-Yuan Liu
Journal:  Nanomaterials (Basel)       Date:  2021-06-18       Impact factor: 5.076

9.  A bilateral interfacial passivation strategy promoting efficiency and stability of perovskite quantum dot light-emitting diodes.

Authors:  Leimeng Xu; Jianhai Li; Bo Cai; Jizhong Song; Fengjuan Zhang; Tao Fang; Haibo Zeng
Journal:  Nat Commun       Date:  2020-08-06       Impact factor: 14.919

10.  Light Intensity-dependent Variation in Defect Contributions to Charge Transport and Recombination in a Planar MAPbI3 Perovskite Solar Cell.

Authors:  Shinyoung Ryu; Duc Cuong Nguyen; Na Young Ha; Hui Joon Park; Y H Ahn; Ji-Yong Park; Soonil Lee
Journal:  Sci Rep       Date:  2019-12-27       Impact factor: 4.379

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