Revealing the Roles of Guanidine Hydrochloride Ionic Liquid in Ion Inhibition and Defects Passivation for Efficient and Stable Perovskite Solar Cells

Author:

Saeed Aamir12,Wang Liang3ORCID,Chen Zhaoyang4,Fang Junhui1,Hussain Iqbal1,Yuan Lin1,Wang Shuai1,Zhao Jianwei5,Zhang Haitao14,Miao Qingqing146ORCID

Affiliation:

1. CAS Key Laboratory of Green Process and Engineering Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 P.R. China

2. University of Chinese Academy of Sciences Beijing 100049 China

3. Info-Powered Energy System Research Center (i-PERC) The University of Electro-Communications Tokyo 182-8585

4. Longzihu New Energy Laboratory Zhengzhou Institute of Emerging Industrial Technology Henan University Zhengzhou 450000 P. R. China

5. Shenzhen Huasuan Technology Co. Ltd Shenzhen 518055 P.R. China

6. Langfang Technological Centre of Green Industry Langfang 065001 P.R. China

Abstract

AbstractAs a result of full‐scale ongoing global efforts, the power conversion efficiency (PCE) of the organic‐inorganic metal halide perovskite has skyrocketed. Unfortunately, the long‐term operational stability for commercialization standards is still lagging owing to intrinsic defects such as ion migration‐induced degradation, undercoordinated Pb2+, and shallow defects initiated by disordered crystal growth. Herein, we employed multifunctional, non‐volatile tetra‐methyl guanidine hydrochloride [TMGHCL] ionic liquid (IL) as an additive to elucidate defects’ passivation effects on organic‐inorganic metal halide perovskite. More specifically, the formation of hydrogen bonds between H+ in GA+ and I and coordinate bonding between Cl and undercoordinated Pb2+ could significantly passivate these defects. The hypothesis was confirmed by both experimental and DFT simulations displaying that the optimized ratio of IL integration restrains ion migration, improving grains’ size, and significantly elongating the carrier lifetime. Remarkably, the modified cell achieved a peak efficiency of 22.00 % with negligible hysteresis, compared to the control device‘s PCE of 20.12 %. In addition, the TMGHCL‐based device retains its 93.29 % efficiency after 16 days of continuous exposure to air with a relative humidity of 35±5% and temperature of 25±5 °C. This efficient approach of adding IL to perovskites absorber can produce high PCE and has strong commercialization potential.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Hebei Province

Publisher

Wiley

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