4.8 Review

Thin-film semiconductor perspective of organometal trihalide perovskite materials for high-efficiency solar cells

Journal

MATERIALS SCIENCE & ENGINEERING R-REPORTS
Volume 101, Issue -, Pages 1-38

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.mser.2015.12.002

Keywords

Organometal trihalide perovskites; Optoelectronic property; Solar cells; Efficiency enhancement; Morphology control; Photocurrent hysteresis; Stability

Funding

  1. Energy Efficiency and Renewable Energy (EERE) SunShot Initiative at Department of Energy [DE-EE0006709]
  2. National Science Foundation [DMR-1505535, DMR-1420645]
  3. Office of Naval Research [N00014-15-1-2713]
  4. Direct For Mathematical & Physical Scien
  5. Division Of Materials Research [1505535] Funding Source: National Science Foundation

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Organometal trihalide perovskites (OTPs) are arising as a new generation of low-cost active materials for solar cells with efficiency rocketing from 3.5% to over 20% within only five years. From dye in dye sensitized solar cells (DSSCs) to hole conductors and electron conductors in mesoscopic heterojunction solar cells, there has been a dramatic conceptual evolution on the function of OTPs in photovoltaic devices. OTPs were originally used as dyes in Gratzel cells, achieving a high efficiency above 15% which, however, did not manifest the excellent charge transport properties of OTPs. An analogy of OTPs to traditional semiconductors. was drawn after the demonstration of highly efficient planar heterojunction structure OTP devices and the observation of their excellent bipolar transport properties with a large diffusion length exceeding 100 nm in CH3NH3PbI3 (MAPbI(3)) polycrystalline thin films. This review aims to provide the most recent advances in the understanding of the origin of the high OTP device efficiency. Specifically, we will focus on reviewing the progress in understanding (1) the characterization of fantastic optoelectronic property of OTPs, (2) the unusual defect physics that originate the optoelectronic property, (3) morphology control of the perovskite film from fabrication process and film post-treatment, (4) device interface and charge transport layers that dramatically impact device efficiency in the OTP thin-film devices, (5) photocurrent hysteresis, (6) tandem solar cells and (7) stability of the perovskite materials and solar cell devices. (C) 2016 Elsevier B.V. All rights reserved.

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