Terahertz phonon engineering with van der Waals heterostructures.

IF 50.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Nature Pub Date : 2024-06-26 DOI:10.1038/s41586-024-07604-9
Yoseob Yoon, Zheyu Lu, Can Uzundal, Ruishi Qi, Wenyu Zhao, Sudi Chen, Qixin Feng, Woochang Kim, Mit H Naik, Kenji Watanabe, Takashi Taniguchi, Steven G Louie, Michael F Crommie, Feng Wang
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Abstract

Phonon engineering at gigahertz frequencies forms the foundation of microwave acoustic filters1, acousto-optic modulators2 and quantum transducers3,4. Terahertz phonon engineering could lead to acoustic filters and modulators at higher bandwidth and speed, as well as quantum circuits operating at higher temperatures. Despite their potential, methods for engineering terahertz phonons have been limited due to the challenges of achieving the required material control at subnanometre precision and efficient phonon coupling at terahertz frequencies. Here we demonstrate the efficient generation, detection and manipulation of terahertz phonons through precise integration of atomically thin layers in van der Waals heterostructures. We used few-layer graphene as an ultrabroadband phonon transducer that converts femtosecond near-infrared pulses to acoustic-phonon pulses with spectral content up to 3 THz. A monolayer WSe2 is used as a sensor. The high-fidelity readout was enabled by the exciton-phonon coupling and strong light-matter interactions. By combining these capabilities in a single heterostructure and detecting responses to incident mechanical waves, we performed terahertz phononic spectroscopy. Using this platform, we demonstrate high-Q terahertz phononic cavities and show that a WSe2 monolayer embedded in hexagonal boron nitride can efficiently block the transmission of terahertz phonons. By comparing our measurements to a nanomechanical model, we obtained the force constants at the heterointerfaces. Our results could enable terahertz phononic metamaterials for ultrabroadband acoustic filters and modulators and could open new routes for thermal engineering.

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范德华异质结构的太赫兹声子工程。
千兆赫频率的声子工程是微波声学滤波器1 、声光调制器2 和量子传感器3,4 的基础。太赫兹声子工程可带来更高带宽和速度的声学滤波器和调制器,以及在更高温度下运行的量子电路。尽管太赫兹声子工程具有巨大潜力,但由于难以实现所需的亚纳米精度材料控制和太赫兹频率下的高效声子耦合,其方法一直受到限制。在这里,我们展示了通过在范德华异质结构中精确集成原子薄层来高效生成、检测和操纵太赫兹声子的方法。我们使用少层石墨烯作为超宽带声子换能器,将飞秒近红外脉冲转换为声子脉冲,其光谱含量高达 3 太赫兹。单层 WSe2 被用作传感器。激子-声子耦合和强光-物质相互作用实现了高保真读出。通过在单个异质结构中结合这些功能并检测对入射机械波的响应,我们实现了太赫兹声波光谱学。利用这一平台,我们展示了高 Q 太赫兹声腔,并表明嵌入六方氮化硼中的 WSe2 单层可以有效地阻止太赫兹声子的传输。通过将测量结果与纳米力学模型进行比较,我们获得了异质界面的力常数。我们的研究成果可将太赫兹声子超材料用于超宽带声学滤波器和调制器,并为热工程开辟新的途径。
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来源期刊
Nature
Nature 综合性期刊-综合性期刊
CiteScore
90.00
自引率
1.20%
发文量
3652
审稿时长
3 months
期刊介绍: Nature is a prestigious international journal that publishes peer-reviewed research in various scientific and technological fields. The selection of articles is based on criteria such as originality, importance, interdisciplinary relevance, timeliness, accessibility, elegance, and surprising conclusions. In addition to showcasing significant scientific advances, Nature delivers rapid, authoritative, insightful news, and interpretation of current and upcoming trends impacting science, scientists, and the broader public. The journal serves a dual purpose: firstly, to promptly share noteworthy scientific advances and foster discussions among scientists, and secondly, to ensure the swift dissemination of scientific results globally, emphasizing their significance for knowledge, culture, and daily life.
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