光探测
材料科学
范霍夫奇点
石墨烯
双层石墨烯
吸收(声学)
红外线的
航程(航空)
扭转
光电子学
双层
凝聚态物理
光电探测器
光学
纳米技术
物理
电子
量子力学
费米能级
生物
遗传学
复合材料
膜
数学
几何学
作者
Junxin Chen,Guanglin Yang,Zhou Zhang,S Chen,Fei‐Yue Wang,Shaojing Liu,Runli Li,G. Q. Liao,Ximiao Wang,Lidan Zhou,Zhaolong Cao,Huanjun Chen,Ya‐Qing Bie,Shaozhi Deng
标识
DOI:10.1021/acsami.4c16877
摘要
Optical responses of twisted bilayer graphene at targeted wavelengths can be amplified by leveraging energy levels of van Hove singularities (VHS) via tuning periods of moiré superlattices. Therefore, precise control of twist angles as well as the moiré superlattices is necessary for fabricating integrated optoelectronic devices such as photodetectors and emitters. Although recent advances in twist angle control help the observation of correlated states in twisted magic-angle graphene structures, the impact of such precise control on enhanced optical absorption is still under investigation. Here, we employ a cut and stack method to construct tBLG with twist angles finely tuned between 4.6° and 6.6°, aligning the VHS near the telecom band with optimized optical absorption. The effective enhanced optical absorption and interlayer interaction uniformity are confirmed through Raman and reflection contrast spectroscopy. Additionally, we demonstrate increased photodetection responsivity and broadband upconversion photothermal emission, both enhanced by VHS, under resonant laser excitation. The study further explores a double-twist trilayer graphene configuration, resulting in better enhanced absorption due to the generation of additional VHS points. Our results underscore the potential of precisely engineered twisted structures in advancing the performance of optoelectronic devices.
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