Impact of Electrostatic Interaction on Vertical Morphology and Energy Loss in Efficient Pseudo‐Planar Heterojunction Organic Solar Cells

Author:

Lai Shiting1,Cui Yongjie12,Chen Zeng3,Xia Xinxin4,Zhu Peipei1,Shan Shiyu1,Hu Lin5,Lu Xinhui4,Zhu Haiming3,Liao Xunfan1,Chen Yiwang1ORCID

Affiliation:

1. Key Laboratory of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education College of Chemistry and Chemical Engineering Jiangxi Normal University 99 Ziyang Avenue Nanchang 330022 China

2. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials & College of Materials Science and Engineering Donghua University 2999 North Renmin Road Shanghai 201620 China

3. State Key Laboratory of Modern Optical Instrumentation Key Laboratory of Excited State Materials of Zhejiang Province Department of Chemistry Zhejiang University Hangzhou Zhejiang 310027 China

4. Department of Physics Chinese University of Hong Kong New Territories Hong Kong 999077 China

5. China‐Australia Institute for Advanced Materials and Manufacturing (IAMM) Jiaxing University Jiaxing 314001 China

Abstract

AbstractAlthough a suitable vertical phase separation (VPS) morphology is essential for improving charge transport efficiency, reducing charge recombination, and ultimately boosting the efficiency of organic solar cells (OSCs), there is a lack of theoretical guidance on how to achieve the ideal morphology. Herein, a relationship between the molecular structure and the VPS morphology of pseudo‐planar heterojunction (PPHJ) OSCs is established by using molecular surface electrostatic potential (ESP) as a bridge. The morphological evolution mechanism is revealed by studying four binary systems with vary electrostatic potential difference (∆ESP) between donors (Ds) and acceptors (As). The findings manifest that as ∆ESP increases, the active layer is more likely to form a well‐mixed phase, while a smaller ∆ESP favors VPS morphology. Interestingly, it is also observed that a larger ∆ESP leads to enhanced miscibility between Ds and As, resulting in higher non‐radiative energy losses (ΔE3). Based on these discoveries, a ternary PPHJ device is meticulously designed with an appropriate ∆ESP to obtain better VPS morphology and lower ΔE3, and an impressive efficiency of 19.09% is achieved. This work demonstrates that by optimizing the ΔESP, not only the formation of VPS morphology can be controlled, but also energy losses can be reduced, paving the way to further boost OSC performance.

Funder

National Natural Science Foundation of China

Double Thousand Plan of Jiangxi Province

Natural Science Foundation of Jiangxi Province

Publisher

Wiley

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