Reducing nonradiative recombination in perovskite solar cells with a porous insulator contact

Author:

Peng Wei1ORCID,Mao Kaitian1ORCID,Cai Fengchun1ORCID,Meng Hongguang1ORCID,Zhu Zhengjie1ORCID,Li Tieqiang1ORCID,Yuan Shaojie1ORCID,Xu Zijian1ORCID,Feng Xingyu1ORCID,Xu Jiahang1ORCID,McGehee Michael D.2ORCID,Xu Jixian13ORCID

Affiliation:

1. Hefei National Research Center for Physical Sciences at the Microscale, CAS Key Laboratory of Materials for Energy Conversion, Department of Materials Science and Engineering, University of Science and Technology of China, Hefei 230026, China.

2. Chemical and Biological Engineering, University of Colorado, Boulder, CO 80309, USA.

3. Institute of Energy, Hefei Comprehensive National Science Center, Hefei 230051, China.

Abstract

Inserting an ultrathin low-conductivity interlayer between the absorber and transport layer has emerged as an important strategy for reducing surface recombination in the best perovskite solar cells. However, a challenge with this approach is a trade-off between the open-circuit voltage ( V oc ) and the fill factor (FF). Here, we overcame this challenge by introducing a thick (about 100 nanometers) insulator layer with random nanoscale openings. We performed drift-diffusion simulations for cells with this porous insulator contact (PIC) and realized it using a solution process by controlling the growth mode of alumina nanoplates. Leveraging a PIC with an approximately 25% reduced contact area, we achieved an efficiency of up to 25.5% (certified steady-state efficiency 24.7%) in p-i-n devices. The product of V oc × FF was 87.9% of the Shockley-Queisser limit. The surface recombination velocity at the p-type contact was reduced from 64.2 to 9.2 centimeters per second. The bulk recombination lifetime was increased from 1.2 to 6.0 microseconds because of improvements in the perovskite crystallinity. The improved wettability of the perovskite precursor solution allowed us to demonstrate a 23.3% efficient 1-square-centimeter p-i-n cell. We demonstrate here its broad applicability for different p-type contacts and perovskite compositions.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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