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Copper coordination polymers with selective hole conductivity

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Title: Copper coordination polymers with selective hole conductivity
Authors: Michaels, H
Golomb, MJ
Kim, BJ
Edvinsson, T
Cucinotta, F
Waddell, PG
Probert, MR
Konezny, SJ
Boschloo, G
Walsh, A
Freitag, M
Item Type: Journal Article
Abstract: Emerging technologies in solar energy will be critical in enabling worldwide society in overcoming the present energy challenges and reaching carbon net zero. Inefficient and unstable charge transport materials limit the current emerging energy conversion and storage technologies. Low-dimensional coordination polymers represent an alternative, unprecedented class of charge transport materials, comprised of molecular building blocks. Here, we provide a comprehensive study of mixed-valence coordination polymers from an analysis of the charge transport mechanism to their implementation as hole-conducting layers. CuII dithiocarbamate complexes afford morphology control of 1D polymer chains linked by (CuI2X2) copper halide rhombi. Concerted theoretical and experimental efforts identified the charge transport mechanism in the transition to band-like transport with a modeled effective hole mass of 6me. The iodide-bridged coordination polymer showed an excellent conductivity of 1 mS cm−1 and a hole mobility of 5.8 10−4 cm2 (V s)−1 at room temperature. Nanosecond selective hole injection into coordination polymer thin films was captured by nanosecond photoluminescence of halide perovskite films. Coordination polymers constitute a sustainable, tunable alternative to the current standard of heavily doped organic hole conductors.
Issue Date: 17-Mar-2022
Date of Acceptance: 14-Mar-2022
URI: http://hdl.handle.net/10044/1/96367
DOI: 10.1039/d2ta00267a
ISSN: 2050-7488
Publisher: Royal Society of Chemistry
Start Page: 9582
End Page: 9591
Journal / Book Title: Journal of Materials Chemistry A
Volume: 10
Issue: 17
Copyright Statement: Open Access Article. Published on 17 March 2022. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence.
Sponsor/Funder: The Royal Society
Funder's Grant Number: RGF/EA/180048
Keywords: Science & Technology
Physical Sciences
Technology
Chemistry, Physical
Energy & Fuels
Materials Science, Multidisciplinary
Chemistry
Materials Science
PEROVSKITE SOLAR-CELLS
SPIRO-MEOTAD
HIGHLY EFFICIENT
TRANSPORT LAYERS
REDOX MEDIATORS
STABILITY
METAL
DOPANT
FRAMEWORKS
COMPLEX
Science & Technology
Physical Sciences
Technology
Chemistry, Physical
Energy & Fuels
Materials Science, Multidisciplinary
Chemistry
Materials Science
PEROVSKITE SOLAR-CELLS
SPIRO-MEOTAD
HIGHLY EFFICIENT
TRANSPORT LAYERS
REDOX MEDIATORS
STABILITY
METAL
DOPANT
FRAMEWORKS
COMPLEX
0303 Macromolecular and Materials Chemistry
0912 Materials Engineering
0915 Interdisciplinary Engineering
Publication Status: Published
Online Publication Date: 2022-03-17
Appears in Collections:Materials
Faculty of Engineering



This item is licensed under a Creative Commons License Creative Commons