Mobile Trions in Electrically Tunable 2D Hybrid Perovskites

Author:

Ziegler Jonas D.1,Cho Yeongsu2,Terres Sophia1,Menahem Matan3,Taniguchi Takashi4,Watanabe Kenji5,Yaffe Omer3,Berkelbach Timothy C.67,Chernikov Alexey1ORCID

Affiliation:

1. Institute of Applied Physics and Würzburg‐Dresden Cluster of Excellence ct.qmat TU Dresden 01062 Dresden Germany

2. Department of Chemistry Columbia University, New York New York 10027 USA

3. Department of Chemical and Biological Physics Weizmann Institute of Science Rehovot 76100 Israel

4. International Center for Materials Nanoarchitectonics National Institute for Materials Science Tsukuba 305‐0047 Japan

5. Research Center for Functional Materials National Institute for Materials Science Tsukuba 305‐0047 Japan

6. Center for Computational Quantum Physics Flatiron Institute New York 10010 USA

7. Department of Chemistry Columbia University New York 10027 USA

Abstract

Abstract2D hybrid perovskites are currently in the spotlight of material research for light‐harvesting and ‐emitting applications. It remains extremely challenging, however, to externally control their optical response due to the difficulties of introducing electrical doping. Here, an approach of interfacing ultrathin sheets of perovskites with few‐layer graphene and hexagonal boron nitride into gate‐tunable, hybrid heterostructures, is demonstrated. It allows for bipolar, continuous tuning of light emission and absorption in 2D perovskites by electrically injecting carriers to densities as high as 1012 cm−2. This reveals the emergence of both negatively and positively charged excitons, or trions, with binding energies up to 46 meV, among the highest measured for 2D systems. Trions are shown to dominate light emission and propagate with mobilities reaching 200 cm2 V−1 s−1 at elevated temperatures. The findings introduce the physics of interacting mixtures of optical and electrical excitations to the broad family of 2D inorganic–organic nanostructures. The presented strategy to electrically control the optical response of 2D perovskites highlights it as a promising material platform toward electrically modulated light‐emitters, externally guided charged exciton currents, and exciton transistors based on layered, hybrid semiconductors.

Funder

Deutsche Forschungsgemeinschaft

Japan Society for the Promotion of Science London

U.S. Air Force

Simons Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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