Structurally Driven Ultrafast Charge Funneling in Organic Bulk Heterojunction Hole Transport Layer for Efficient Colloidal Quantum Dot Photovoltaics

Author:

Yang Jonghee1ORCID,Sharma Ashish2,Yoon Jung Won2,Paritmongkol Watcharaphol3,Lee Seungjin34,Ahn Hyungju5,Lee Wooseop5,Song Hochan2,Jeong Woo Hyeon2,Lee Bo Ram6,Ko Seo‐Jin7,Ahmadi Mahshid1,Sargent Edward H.3,Choi Hyosung2ORCID

Affiliation:

1. Institute for Advanced Materials and Manufacturing Department of Materials Science and Engineering University of Tennessee Knoxville TN 37996 United States

2. Department of Chemistry Research Institute for Convergence of Basic Science and Research Institute for Natural Sciences Hanyang University Seoul 04763 Republic of Korea

3. Department of Electrical and Computer Engineering University of Toronto Toronto ON M5S 3G4 Canada

4. Department of Energy Engineering KI for Energy Materials and Devices Korea Institute of Energy Technology (KENTECH) Naju 58330 Republic of Korea

5. Pohang Accelerator Laboratory POSTECH Pohang 37673 Republic of Korea

6. Department of Physics Pukyong National University Busan 48513 Republic of Korea

7. Division of Advanced Materials Korea Research Institute of Chemical Technology Daejeon 34114 Republic of Korea

Abstract

AbstractNanoscopic packing structures crucially determine the charge conduction and the consequent functionalities of organic semiconductors including bulk heterojunctions (BHJs), which are dependent on various processing parameters. Today's high‐performance colloidal quantum dot photovoltaics (CQDPVs) employ functional organic semiconductors as a hole transport layer (HTL). However, the processing of those films replicates a protocol dedicated to high‐performance organic PVs, and thus little is known about how to control the molecular packing structures to maximize the hole extraction function of the HTLs. Herein, it is uncovered that the random‐oriented, but closer‐packed BHJ crystallites, constructed by 1,2‐dichlorobenzene (o‐DCB) as a solvent, allow exceptional charge conduction vertically across the film and restrict diffusion‐driven charge transfer process, enabling ultrafast hole funneling from CQD to BHJ to be extracted. As a result, a power conversion efficiency of 13.66% with high photocurrent >34 mA cm−2 is achieved by employing o‐DCB‐processed BHJ HTL, far exceeding the performance of the CQDPV solely employing neat polymer HTL. A charge conduction mechanism associated with the BHJ HTL structure suppressing the bimolecular recombination is proposed. This works not only suggests key principles to control the packing structures of organic HTLs but also opens a new avenue to boost optoelectronic performance.

Funder

National Research Foundation of Korea

National Science Foundation

Hanyang University

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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