High Miscibility‐Induced Reduction of Trap Density in All‐Polymer Solar Cells Using Hybrid Cyclohexyl‐Hexyl Side Chains

Author:

Sun Fengbo12,Wang Xunchang1,Wan Ming1,Liu Zhitian2,Luo Yixuan1,Ren Jiajia1,Zheng Xufan1,Rath Thomas3,Xiao Cong1,Hu Tianyu1,Trimmel Gregor3,Yang Renqiang1ORCID

Affiliation:

1. Key Laboratory of Optoelectronic Chemical Materials and Devices (Ministry of Education) School of Optoelectronic Materials and Technology Jianghan University Wuhan 430056 China

2. Hubei Engineering Technology Research Center of Optoelectronic and New Energy Materials Hubei Key Laboratory of Plasma Chemistry and Advanced Materials School of Materials Science and Engineering Wuhan Institute of Technology Wuhan 430205 China

3. Institute for Chemistry and Technology of Materials (ICTM) NAWI Graz Graz University of Technology Stremayrgasse 9 Graz 8010 Austria

Abstract

AbstractReducing the trap density within organic solar cells is of vital importance to realize high power conversion efficiency (PCE); however, research focusing on this aspect is limited in all‐polymer solar cells (All‐PSCs). In this work, it is found that the trap density can be dramatically reduced by simultaneously obtaining high miscibility of donor and acceptor and ordered packing in blend films through substituting ethylhexyl with hybrid cyclohexyl‐hexyl side chains in the design of the polymer donor. D18‐ChCl with hybrid cyclohexyl‐hexyl chains has a slightly lower aggregation behavior relative to the D18‐Cl counterpart, but reveals synchronously higher miscibility and crystallinity in a blend with the acceptor PYF‐T‐o. Such a morphology evolution positively affects the electronic properties of the device—prolongs the carrier lifetime, facilitates exciton dissociation, and lowers the energy disorder. As a result, the All‐PSC devices based on D18‐ChCl exhibited a remarkable PCE of 17.1%, with a low trap density of 2.65 × 1015 cm−3, a low energy disorder of 47 meV as well as outstanding stability and mechanical durability. This result demonstrates that hybrid cyclohexyl‐hexyl alkyl engineering delicately improves miscibility, drives low trap density, and refines device performance, which brings vibrancy to the All‐PSC research field.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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