Advancing solar energy applications with graphene: the potential of minimally oxidized graphene.

IF 11 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Qiang Chen, Jewook Kim, Myungwoo Choi, Seokwoo Jeon
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Abstract

Integrating carbon nanomaterials into solar energy technologies has emerged as a promising strategy to improve efficiency, scalability, and sustainability. Although graphene has excellent carrier mobility, electrical conductivity, and optical transparency, graphene derivatives such as graphene oxide (GO) and reduced graphene oxide (rGO) suffer from significant structural defects and disruption of the sp2-hybridized carbon lattice caused by oxidative processing, severely limiting their electronic and optoelectronic performances. To address these limitations, minimally oxidized graphene (MOG), which includes non-oxidized graphene flakes (NOGFs) and low-oxidized graphene quantum dots (GQDs), has been developed via a nondestructive approach based on ion or molecular intercalation followed by liquid-phase exfoliation. These materials retain the integrity of a π-conjugated network and offer tunable functionalities and solution processability. NOGFs exhibit high conductivity, broadband light absorption, and thermal stability, making them ideal materials for use in solar cell electrodes, photothermal absorbers, and photocatalytic scaffolds. GQDs with tunable bandgaps and abundant functional groups serve as interfacial modifiers in solar cells and as active sites for photocatalysis. This review summarizes recent advances in MOG, focusing on structure-property-performance relationships and applications in solar energy conversion. A comparative evaluation with conventional GO/rGO-based systems is presented along with future directions toward developing high-efficiency graphene-enabled solar technologies.

石墨烯推进太阳能应用:石墨烯最低氧化的潜力。
将碳纳米材料集成到太阳能技术中已经成为提高效率、可扩展性和可持续性的一种有前途的策略。尽管石墨烯具有优异的载流子迁移率、导电性和光学透明性,但石墨烯衍生物如氧化石墨烯(GO)和还原氧化石墨烯(rGO)由于氧化加工而导致明显的结构缺陷和sp2杂化碳晶格的破坏,严重限制了它们的电子和光电子性能。为了解决这些限制,通过基于离子或分子插层的非破坏性方法开发了最低氧化石墨烯(MOG),包括非氧化石墨烯薄片(NOGFs)和低氧化石墨烯量子点(GQDs),然后进行液相剥离。这些材料保持π共轭网络的完整性,并提供可调的功能和解的可加工性。NOGFs具有高导电性,宽带光吸收和热稳定性,使其成为太阳能电池电极,光热吸收器和光催化支架的理想材料。GQDs具有可调的带隙和丰富的官能团,可作为太阳能电池的界面改性剂和光催化的活性位点。本文综述了MOG的最新进展,重点介绍了结构-性能-性能关系及其在太阳能转换中的应用。与传统的基于氧化石墨烯/ rgo的系统进行了比较评估,并提出了未来开发高效石墨烯太阳能技术的方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nano Convergence
Nano Convergence Engineering-General Engineering
CiteScore
15.90
自引率
2.60%
发文量
50
审稿时长
13 weeks
期刊介绍: Nano Convergence is an internationally recognized, peer-reviewed, and interdisciplinary journal designed to foster effective communication among scientists spanning diverse research areas closely aligned with nanoscience and nanotechnology. Dedicated to encouraging the convergence of technologies across the nano- to microscopic scale, the journal aims to unveil novel scientific domains and cultivate fresh research prospects. Operating on a single-blind peer-review system, Nano Convergence ensures transparency in the review process, with reviewers cognizant of authors' names and affiliations while maintaining anonymity in the feedback provided to authors.
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