Graphene quantum dots as game-changers in solar cell technology: a review of synthetic processes and performance enhancement

IF 5.5 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Muhammad Panachikkool, T. Pandiyarajan
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引用次数: 0

Abstract

Graphene quantum dots (GQDs) are zero-dimensional carbonous materials with exceptional physical and chemical properties such as a tuneable band gap, good conductivity, quantum confinement, and edge effect. The introduction of GQDs in various layers of solar cells (SCs) such as hole transport layer (HTL), electron transport materials (ETM), cathode interlayer (CIL), photoanode materials (PAM), counter electrode (CE), and transparent conducting electrode (TCE) could improve the solar energy (SE) harvesting, separation and transportation of electrons and hole, thus ultimately enhance the overall performance and stability of SCs. The incorporation of GQDs in various layers such as HTL, ETM, CIL, PAM, CE, and TCE achieved photo conversion efficiencies (PCEs) of 18.63, 21.1, 12.81, 9.41, 8.1, and 3.66%, respectively. Furthermore, GQDs improved stabilities such as resistance to degradation for HTL (up to 77%), ETM (80%), resistance to UV light for ETM (94%), resistance to temperature in ETM (90%), and bending stabilities after 1000 cycles for HTL (88%) and for TCE (90%). There are reviews focused on the utilization of different carbon-structured materials such as graphene, carbon nanotubes (CNT), fullerenes, and carbon dots in SCs applications. More specifically, the utilization of GQDs for SCs is limited and yet to be explored in greater detail. This review mainly focuses on the recent advancement of various techniques of production of GQDs synthesis, utilization of GQDs in various layers like HTL, ETM, CIL, PAM, CE, and TCE for the enhancement of PCE, and the stability of SCs. As a result, we believe that an exclusive study on GQDs-sensitized solar cells (GQDSSCs) could provide an in-depth analysis of the recent progress, achievements, and challenges.

Graphical abstract

Abstract Image

改变太阳能电池技术游戏规则的石墨烯量子点:合成工艺与性能提升综述
石墨烯量子点(GQDs)是一种零维碳材料,具有特殊的物理和化学特性,如可调带隙、良好的导电性、量子约束和边缘效应。在太阳能电池(SC)的各层,如空穴传输层(HTL)、电子传输材料(ETM)、阴极中间层(CIL)、光阳极材料(PAM)、对电极(CE)和透明导电电极(TCE)中引入 GQDs,可以改善太阳能(SE)的收集、电子和空穴的分离和传输,从而最终提高太阳能电池的整体性能和稳定性。在 HTL、ETM、CIL、PAM、CE 和 TCE 等不同层中加入 GQDs 后,光转换效率(PCE)分别达到 18.63%、21.1%、12.81%、9.41%、8.1% 和 3.66%。此外,GQDs 还提高了稳定性,例如 HTL 的抗降解性(高达 77%)、ETM 的抗降解性(80%)、ETM 的抗紫外线性(94%)、ETM 的抗温度性(90%),以及 HTL 和 TCE 1000 次循环后的弯曲稳定性(88%)和 TCE 的弯曲稳定性(90%)。有一些综述侧重于不同碳结构材料(如石墨烯、碳纳米管 (CNT)、富勒烯和碳点)在 SCs 应用中的利用。更具体地说,将 GQDs 用于 SC 的研究还很有限,还有待更详细地探讨。本综述主要关注 GQDs 合成生产技术的最新进展、GQDs 在 HTL、ETM、CIL、PAM、CE 和 TCE 等不同层中的利用以增强 PCE 以及 SCs 的稳定性。因此,我们认为对 GQDs 感光太阳能电池(GQDSSCs)的专门研究可以深入分析最近的进展、成就和挑战。
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来源期刊
Carbon Letters
Carbon Letters CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
7.30
自引率
20.00%
发文量
118
期刊介绍: Carbon Letters aims to be a comprehensive journal with complete coverage of carbon materials and carbon-rich molecules. These materials range from, but are not limited to, diamond and graphite through chars, semicokes, mesophase substances, carbon fibers, carbon nanotubes, graphenes, carbon blacks, activated carbons, pyrolytic carbons, glass-like carbons, etc. Papers on the secondary production of new carbon and composite materials from the above mentioned various carbons are within the scope of the journal. Papers on organic substances, including coals, will be considered only if the research has close relation to the resulting carbon materials. Carbon Letters also seeks to keep abreast of new developments in their specialist fields and to unite in finding alternative energy solutions to current issues such as the greenhouse effect and the depletion of the ozone layer. The renewable energy basics, energy storage and conversion, solar energy, wind energy, water energy, nuclear energy, biomass energy, hydrogen production technology, and other clean energy technologies are also within the scope of the journal. Carbon Letters invites original reports of fundamental research in all branches of the theory and practice of carbon science and technology.
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