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research article

Phosphorene Nanoribbon-Augmented Optoelectronics for Enhanced Hole Extraction

Macdonald, Thomas J.
•
Clancy, Adam J.
•
Xu, Weidong
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December 17, 2021
Journal Of The American Chemical Society

Phosphorene nanoribbons (PNRs) have been widely predicted to exhibit a range of superlative functional properties; however, because they have only recently been isolated, these properties are yet to be shown to translate to improved performance in any application. PNRs show particular promise for optoelectronics, given their predicted high exciton binding energies, tunable bandgaps, and ultrahigh hole mobilities. Here, we verify the theorized enhanced hole mobility in both solar cells and space-charge-limited-current devices, demonstrating the potential for PNRs improving hole extraction in universal optoelectronic applications. Specifi- cally, PNRs are demonstrated to act as an effective charge-selective interlayer by enhancing hole extraction from polycrystalline methylammonium lead iodide (MAPbI(3)) perovskite to the poly(triarylamine) semiconductor. Introducing PNRs at the hole-transport/MAPbI(3) interface achieves fill factors above 0.83 and efficiencies exceeding 21% for planar p-i-n (inverted) perovskite solar cells (PSCs). Such efficiencies are typically only reported for single-crystalline MAPbI(3)-based inverted PSCs. Methylammonium-free PSCs also benefit from a PNR interlayer, verifying applicability to architectures incorporating mixed perovskite absorber layers. Device photoluminescence and transient absorption spectroscopy are used to demonstrate that the presence of the PNRs drives more effective carrier extraction. Isolation of the PNRs in space-charge-limited-current hole-only devices improves both hole mobility and conductivity, demonstrating applicability beyond PSCs. This work provides primary experimental evidence that the predicted superlative functional properties of PNRs indeed translate to improved optoelectronic performance.

  • Details
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Type
research article
DOI
10.1021/jacs.1c08905
Web of Science ID

WOS:000734274900001

Author(s)
Macdonald, Thomas J.
Clancy, Adam J.
Xu, Weidong
Jiang, Zhongyao
Lin, Chieh-Ting
Mohan, Lokeshwari
Du, Tian
Tune, Daniel D.
Lanzetta, Luis
Min, Ganghong
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Date Issued

2021-12-17

Publisher

AMER CHEMICAL SOC

Published in
Journal Of The American Chemical Society
Volume

143

Issue

51

Start page

21549

End page

21559

Subjects

Chemistry, Multidisciplinary

•

Chemistry

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perovskite solar-cells

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open-circuit voltage

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quantum dots

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efficient

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recombination

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trihalide

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diffusion

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lengths

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
INE  
Available on Infoscience
January 15, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/184589
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