石墨烯-半导体异质结构中超快电荷和能量流动的跟踪与控制。

IF 33.2 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
The Innovation Pub Date : 2025-01-04 eCollection Date: 2025-03-03 DOI:10.1016/j.xinn.2024.100764
Shuai Fu, Heng Zhang, Klaas-Jan Tielrooij, Mischa Bonn, Hai I Wang
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引用次数: 0

摘要

低维材料在现代材料科学中留下了印记,为下一代光电应用创造了新的机会。将不同的纳米级构建块集成到异质结构中,可以结合单个组件的优势特性,并探索它们相互作用和原子尺度接近所产生的特性。利用半导体实现石墨烯的敏化,为通过各种混合系统推进光电应用提供了一个非常有前途的平台。实现优异性能的一个关键方面在于理解和控制光生载流子的命运,包括产生、转移、分离和重组。本文综述了利用超快激光光谱研究石墨烯-半导体异质结构中载流子动力学的最新进展。首先,我们全面概述了石墨烯异质结构及其最新的光电应用。随后介绍了理论框架,阐明了影响电荷转移和能量转移的基本原理和决定因素,这两个关键的界面过程对基础研究和设备性能都至关重要。然后,我们概述了最近针对石墨烯-半导体异质结构中超快电荷/能量流动的研究,重点阐述了转移和重组过程的轨迹、方向和机制。随后,我们将讨论允许对这些过程进行微调的有效控制旋钮。最后,提出了该领域有待进一步研究的挑战和展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tracking and controlling ultrafast charge and energy flow in graphene-semiconductor heterostructures.

Low-dimensional materials have left a mark on modern materials science, creating new opportunities for next-generation optoelectronic applications. Integrating disparate nanoscale building blocks into heterostructures offers the possibility of combining the advantageous features of individual components and exploring the properties arising from their interactions and atomic-scale proximity. The sensitization of graphene using semiconductors provides a highly promising platform for advancing optoelectronic applications through various hybrid systems. A critical aspect of achieving superior performance lies in understanding and controlling the fate of photogenerated charge carriers, including generation, transfer, separation, and recombination. Here, we review recent advances in understanding charge carrier dynamics in graphene-semiconductor heterostructures by ultrafast laser spectroscopies. First, we present a comprehensive overview of graphene-based heterostructures and their state-of-the-art optoelectronic applications. This is succeeded by an introduction to the theoretical frameworks that elucidate the fundamental principles and determinants influencing charge transfer and energy transfer-two critical interfacial processes that are vital for both fundamental research and device performance. We then outline recent efforts aimed at investigating ultrafast charge/energy flow in graphene-semiconductor heterostructures, focusing on illustrating the trajectories, directions, and mechanisms of transfer and recombination processes. Subsequently, we discuss effective control knobs that allow fine-tuning of these processes. Finally, we address the challenges and prospects for further investigation in this field.

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来源期刊
The Innovation
The Innovation MULTIDISCIPLINARY SCIENCES-
CiteScore
38.30
自引率
1.20%
发文量
134
审稿时长
6 weeks
期刊介绍: The Innovation is an interdisciplinary journal that aims to promote scientific application. It publishes cutting-edge research and high-quality reviews in various scientific disciplines, including physics, chemistry, materials, nanotechnology, biology, translational medicine, geoscience, and engineering. The journal adheres to the peer review and publishing standards of Cell Press journals. The Innovation is committed to serving scientists and the public. It aims to publish significant advances promptly and provides a transparent exchange platform. The journal also strives to efficiently promote the translation from scientific discovery to technological achievements and rapidly disseminate scientific findings worldwide. Indexed in the following databases, The Innovation has visibility in Scopus, Directory of Open Access Journals (DOAJ), Web of Science, Emerging Sources Citation Index (ESCI), PubMed Central, Compendex (previously Ei index), INSPEC, and CABI A&I.
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