The Interaction between Quantum Dots and Graphene: The Applications in Graphene‐Based Solar Cells and Photodetectors

Graphene with a series of neoteric electronic and optical properties is an intriguing building block for optoelectronic devices. Over the past decade, graphene‐based solar cells (SCs) and photodetectors (PDs) which can convert light signals to electrical signals have received burgeoning exploration....

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Veröffentlicht in:Advanced functional materials 2018-12, Vol.28 (50), p.n/a
Hauptverfasser: Wu, Jianghong, Lu, Yanghua, Feng, Sirui, Wu, Zhiqian, Lin, Shuyuan, Hao, Zhenzhen, Yao, Tianyi, Li, Xinming, Zhu, Hongwei, Lin, Shisheng
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container_issue 50
container_start_page
container_title Advanced functional materials
container_volume 28
creator Wu, Jianghong
Lu, Yanghua
Feng, Sirui
Wu, Zhiqian
Lin, Shuyuan
Hao, Zhenzhen
Yao, Tianyi
Li, Xinming
Zhu, Hongwei
Lin, Shisheng
description Graphene with a series of neoteric electronic and optical properties is an intriguing building block for optoelectronic devices. Over the past decade, graphene‐based solar cells (SCs) and photodetectors (PDs) which can convert light signals to electrical signals have received burgeoning exploration. However, limited light absorption hampers the performance of these devices. Quantum dots (QDs) possess a strong confinement effect, a large exciton energy, and long exciton lifetime, enhancing the interaction between incident light and graphene. Especially, as the density of states near the Dirac point of graphene is ultralow, it is easy to modify the Fermi level of graphene by inserting quantum dots at the interface between graphene and light, thereby enhancing the performance of graphene‐based optoelectronic devices. The characteristics of QDs and crucial physical mechanisms of the interaction and energy transfer in QDs/graphene nanohybrids are systematically addressed. The factors influencing the efficiency of energy transfer are also analyzed quantitatively. Moreover, the experimental process of QD‐enhanced technologies for SCs, photoconductors, phototransistors, and photodiode PDs is reviewed. Eventually, a conclusion is given and the remaining challenges and future development for QDs/2D materials hybrid systems is discussed. Possible steps toward large‐scale commercial applications and integration into optoelectronic networks are suggested. Graphene‐based solar cells and photodetectors (PDs) have received burgeoning exploration. The Fermi level of graphene can be dynamically tuned by coating quantum dots (QDs), where optical absorption of graphene can also be decided by specified kind of QDs. The fundamental physical interaction between QDs and graphene is addressed and summarized. The applications of QDs/graphene‐based PDs and solar cells are highly expected.
doi_str_mv 10.1002/adfm.201804712
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Over the past decade, graphene‐based solar cells (SCs) and photodetectors (PDs) which can convert light signals to electrical signals have received burgeoning exploration. However, limited light absorption hampers the performance of these devices. Quantum dots (QDs) possess a strong confinement effect, a large exciton energy, and long exciton lifetime, enhancing the interaction between incident light and graphene. Especially, as the density of states near the Dirac point of graphene is ultralow, it is easy to modify the Fermi level of graphene by inserting quantum dots at the interface between graphene and light, thereby enhancing the performance of graphene‐based optoelectronic devices. The characteristics of QDs and crucial physical mechanisms of the interaction and energy transfer in QDs/graphene nanohybrids are systematically addressed. The factors influencing the efficiency of energy transfer are also analyzed quantitatively. Moreover, the experimental process of QD‐enhanced technologies for SCs, photoconductors, phototransistors, and photodiode PDs is reviewed. Eventually, a conclusion is given and the remaining challenges and future development for QDs/2D materials hybrid systems is discussed. Possible steps toward large‐scale commercial applications and integration into optoelectronic networks are suggested. Graphene‐based solar cells and photodetectors (PDs) have received burgeoning exploration. The Fermi level of graphene can be dynamically tuned by coating quantum dots (QDs), where optical absorption of graphene can also be decided by specified kind of QDs. The fundamental physical interaction between QDs and graphene is addressed and summarized. 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subjects 2D materials
Electromagnetic absorption
Energy conversion efficiency
Energy transfer
Excitons
Graphene
Hybrid systems
Incident light
Materials science
Optical properties
Optoelectronic devices
Photoconductors
photodetector
Photodiodes
Photometers
Phototransistors
Photovoltaic cells
Quantum dots
Solar cells
title The Interaction between Quantum Dots and Graphene: The Applications in Graphene‐Based Solar Cells and Photodetectors
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