Matrix Manipulation of Directly‐Synthesized PbS Quantum Dot Inks Enabled by Coordination Engineering

The direct‐synthesis of conductive PbS quantum dot (QD) ink is facile, scalable, and low‐cost, boosting the future commercialization of optoelectronics based on colloidal QDs. However, manipulating the QD matrix structures still is a challenge, which limits the corresponding QD solar cell performanc...

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Veröffentlicht in:Advanced functional materials 2021-11, Vol.31 (45), p.n/a
Hauptverfasser: Li, Fei, Liu, Yang, Shi, Guozheng, Chen, Wei, Guo, Renjun, Liu, Dong, Zhang, Yaohong, Wang, Yongjie, Meng, Xing, Zhang, Xuliang, Lv, You, Deng, Wei, Zhang, Qing, Shi, Yao, Chen, Yifan, Wang, Kai, Shen, Qing, Liu, Zeke, Müller‐Buschbaum, Peter, Ma, Wanli
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container_issue 45
container_start_page
container_title Advanced functional materials
container_volume 31
creator Li, Fei
Liu, Yang
Shi, Guozheng
Chen, Wei
Guo, Renjun
Liu, Dong
Zhang, Yaohong
Wang, Yongjie
Meng, Xing
Zhang, Xuliang
Lv, You
Deng, Wei
Zhang, Qing
Shi, Yao
Chen, Yifan
Wang, Kai
Shen, Qing
Liu, Zeke
Müller‐Buschbaum, Peter
Ma, Wanli
description The direct‐synthesis of conductive PbS quantum dot (QD) ink is facile, scalable, and low‐cost, boosting the future commercialization of optoelectronics based on colloidal QDs. However, manipulating the QD matrix structures still is a challenge, which limits the corresponding QD solar cell performance. Here, for the first time a coordination‐engineering strategy to finely adjust the matrix thickness around the QDs is presented, in which halogen salts are introduced into the reaction to convert the excessive insulating lead iodide into soluble iodoplumbate species. As a result, the obtained QD film exhibits shrunk insulating shells, leading to higher charge carrier transport and superior surface passivation compared to the control devices. A significantly improved power‐conversion efficiency from 10.52% to 12.12% can be achieved after the matrix engineering. Therefore, the work shows high significance in promoting the practical application of directly synthesized PbS QD inks in large‐area low‐cost optoelectronic devices. A coordination‐engineering strategy to finely manipulate the matrix thickness around the quantum dots (QDs) is reported. In this method, halogen salts are introduced into the reaction to convert the excessive insulating lead iodide into soluble iodoplumbate species. A significantly improved power conversion efficiency from 10.52% to 12.12% can be achieved after the matrix engineering based on the directly synthesized, semi‐conductive PbS QD inks.
doi_str_mv 10.1002/adfm.202104457
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However, manipulating the QD matrix structures still is a challenge, which limits the corresponding QD solar cell performance. Here, for the first time a coordination‐engineering strategy to finely adjust the matrix thickness around the QDs is presented, in which halogen salts are introduced into the reaction to convert the excessive insulating lead iodide into soluble iodoplumbate species. As a result, the obtained QD film exhibits shrunk insulating shells, leading to higher charge carrier transport and superior surface passivation compared to the control devices. A significantly improved power‐conversion efficiency from 10.52% to 12.12% can be achieved after the matrix engineering. Therefore, the work shows high significance in promoting the practical application of directly synthesized PbS QD inks in large‐area low‐cost optoelectronic devices. A coordination‐engineering strategy to finely manipulate the matrix thickness around the quantum dots (QDs) is reported. In this method, halogen salts are introduced into the reaction to convert the excessive insulating lead iodide into soluble iodoplumbate species. 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In this method, halogen salts are introduced into the reaction to convert the excessive insulating lead iodide into soluble iodoplumbate species. 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However, manipulating the QD matrix structures still is a challenge, which limits the corresponding QD solar cell performance. Here, for the first time a coordination‐engineering strategy to finely adjust the matrix thickness around the QDs is presented, in which halogen salts are introduced into the reaction to convert the excessive insulating lead iodide into soluble iodoplumbate species. As a result, the obtained QD film exhibits shrunk insulating shells, leading to higher charge carrier transport and superior surface passivation compared to the control devices. A significantly improved power‐conversion efficiency from 10.52% to 12.12% can be achieved after the matrix engineering. Therefore, the work shows high significance in promoting the practical application of directly synthesized PbS QD inks in large‐area low‐cost optoelectronic devices. A coordination‐engineering strategy to finely manipulate the matrix thickness around the quantum dots (QDs) is reported. In this method, halogen salts are introduced into the reaction to convert the excessive insulating lead iodide into soluble iodoplumbate species. A significantly improved power conversion efficiency from 10.52% to 12.12% can be achieved after the matrix engineering based on the directly synthesized, semi‐conductive PbS QD inks.</abstract><cop>Hoboken</cop><pub>Wiley Subscription Services, Inc</pub><doi>10.1002/adfm.202104457</doi><tpages>9</tpages><orcidid>https://orcid.org/0000-0002-2001-3234</orcidid><orcidid>https://orcid.org/0000-0002-2507-4386</orcidid><orcidid>https://orcid.org/0000-0003-1116-3334</orcidid><orcidid>https://orcid.org/0000-0001-9550-0523</orcidid><orcidid>https://orcid.org/0000-0002-9566-6088</orcidid><orcidid>https://orcid.org/0000-0003-0443-6955</orcidid></addata></record>
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subjects Carrier transport
Commercialization
Control equipment
Coordination
coordination engineering
Current carriers
directly synthesized inks
Energy conversion efficiency
Inks
Materials science
matrix manipulation
Optoelectronic devices
PbS quantum dots
Photovoltaic cells
Quantum dots
Solar cells
Synthesis
title Matrix Manipulation of Directly‐Synthesized PbS Quantum Dot Inks Enabled by Coordination Engineering
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