Bulk Incorporation of Molecular Dopants into Ruddlesden–Popper Organic Metal–Halide Perovskites for Charge Transfer Doping

Author:

Lee Jonghoon1ORCID,Baek Kyeong‐Yoon1,Lee Jeongjae2,Ahn Heebeom1,Kim Yongjin3,Lim Hyungbin1,Kim Yeeun1,Woo Jaeyong1,Stranks Samuel D.4,Lee Sung Keun25,Sirringhaus Henning4,Kang Keehoon356ORCID,Lee Takhee1ORCID

Affiliation:

1. Department of Physics and Astronomy, and Institute of Applied Physics Seoul National University 08826 Seoul South Korea

2. School of Earth and Environmental Sciences Seoul National University 08826 Seoul South Korea

3. Department of Materials Science and Engineering Seoul National University 08826 Seoul South Korea

4. Optoelectronics Group Department of Physics Cavendish Laboratory University of Cambridge CB3 0HE Cambridge UK

5. Institute of Applied Physics Seoul National University 08826 Seoul South Korea

6. Research Institute of Advanced Materials Seoul National University 08826 Seoul South Korea

Abstract

AbstractOrganic metal‐halide perovskites (OHPs) have recently attracted much attention as next‐generation semiconducting materials due to their outstanding opto‐electrical properties. However, OHPs currently suffer from the lack of efficient doping methods, while the traditional method of atomistic doping having clear limitations in the achievable doping range. While doping with molecular dopants, has been suggested as a solution to this problem, the action of these dopants is typically restricted to perovskite surfaces, therefore significantly reducing their doping potential. In this study, successful bulk inclusion of “magic blue”, a molecular dopant, into 2D Ruddlesden–Popper perovskites is reported. This doping strategy of immersing the perovskite film in dopant solution increases the electrical current up to ≈60 times while maintaining clean film surface. A full mechanistic picture of such immersion doping is provided, in which the solvent molecule facilitates bulk diffusion of dopant molecule inside the organic spacer layer. Physical criteria for judicious choice of solvents in immersion doping are developed based on readily available solvent properties. The immersion doping method developed in this study that enables bulk molecular doping in OHPs will provide a strategic doping methodology for controlling electrical properties of OHPs for electronic and optoelectronic devices.

Funder

National Research Foundation of Korea

Publisher

Wiley

Subject

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

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